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LICENSE.txt ADDED
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1
+ LLAMA 3.2 COMMUNITY LICENSE AGREEMENT
2
+ Llama 3.2 Version Release Date: September 25, 2024
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+
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+ “Agreement” means the terms and conditions for use, reproduction, distribution
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+ and modification of the Llama Materials set forth herein.
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+
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+ “Documentation” means the specifications, manuals and documentation accompanying Llama 3.2
8
+ distributed by Meta at https://llama.meta.com/doc/overview.
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+
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+ “Licensee” or “you” means you, or your employer or any other person or entity (if you are
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+ entering into this Agreement on such person or entity’s behalf), of the age required under
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+ applicable laws, rules or regulations to provide legal consent and that has legal authority
13
+ to bind your employer or such other person or entity if you are entering in this Agreement
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+ on their behalf.
15
+
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+ “Llama 3.2” means the foundational large language models and software and algorithms, including
17
+ machine-learning model code, trained model weights, inference-enabling code, training-enabling code,
18
+ fine-tuning enabling code and other elements of the foregoing distributed by Meta at
19
+ https://www.llama.com/llama-downloads.
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+
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+ “Llama Materials” means, collectively, Meta’s proprietary Llama 3.2 and Documentation (and
22
+ any portion thereof) made available under this Agreement.
23
+
24
+ “Meta” or “we” means Meta Platforms Ireland Limited (if you are located in or,
25
+ if you are an entity, your principal place of business is in the EEA or Switzerland)
26
+ and Meta Platforms, Inc. (if you are located outside of the EEA or Switzerland).
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+
28
+
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+ By clicking “I Accept” below or by using or distributing any portion or element of the Llama Materials,
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+ you agree to be bound by this Agreement.
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+
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+
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+ 1. License Rights and Redistribution.
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+
35
+ a. Grant of Rights. You are granted a non-exclusive, worldwide,
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+ non-transferable and royalty-free limited license under Meta’s intellectual property or other rights
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+ owned by Meta embodied in the Llama Materials to use, reproduce, distribute, copy, create derivative works
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+ of, and make modifications to the Llama Materials.
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+
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+ b. Redistribution and Use.
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+
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+ i. If you distribute or make available the Llama Materials (or any derivative works thereof),
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+ or a product or service (including another AI model) that contains any of them, you shall (A) provide
44
+ a copy of this Agreement with any such Llama Materials; and (B) prominently display “Built with Llama”
45
+ on a related website, user interface, blogpost, about page, or product documentation. If you use the
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+ Llama Materials or any outputs or results of the Llama Materials to create, train, fine tune, or
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+ otherwise improve an AI model, which is distributed or made available, you shall also include “Llama”
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+ at the beginning of any such AI model name.
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+
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+ ii. If you receive Llama Materials, or any derivative works thereof, from a Licensee as part
51
+ of an integrated end user product, then Section 2 of this Agreement will not apply to you.
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+
53
+ iii. You must retain in all copies of the Llama Materials that you distribute the
54
+ following attribution notice within a “Notice” text file distributed as a part of such copies:
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+ “Llama 3.2 is licensed under the Llama 3.2 Community License, Copyright © Meta Platforms,
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+ Inc. All Rights Reserved.”
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+
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+ iv. Your use of the Llama Materials must comply with applicable laws and regulations
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+ (including trade compliance laws and regulations) and adhere to the Acceptable Use Policy for
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+ the Llama Materials (available at https://www.llama.com/llama3_2/use-policy), which is hereby
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+ incorporated by reference into this Agreement.
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+
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+ 2. Additional Commercial Terms. If, on the Llama 3.2 version release date, the monthly active users
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+ of the products or services made available by or for Licensee, or Licensee’s affiliates,
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+ is greater than 700 million monthly active users in the preceding calendar month, you must request
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+ a license from Meta, which Meta may grant to you in its sole discretion, and you are not authorized to
67
+ exercise any of the rights under this Agreement unless or until Meta otherwise expressly grants you such rights.
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+
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+ 3. Disclaimer of Warranty. UNLESS REQUIRED BY APPLICABLE LAW, THE LLAMA MATERIALS AND ANY OUTPUT AND
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+ RESULTS THEREFROM ARE PROVIDED ON AN “AS IS” BASIS, WITHOUT WARRANTIES OF ANY KIND, AND META DISCLAIMS
71
+ ALL WARRANTIES OF ANY KIND, BOTH EXPRESS AND IMPLIED, INCLUDING, WITHOUT LIMITATION, ANY WARRANTIES
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+ OF TITLE, NON-INFRINGEMENT, MERCHANTABILITY, OR FITNESS FOR A PARTICULAR PURPOSE. YOU ARE SOLELY RESPONSIBLE
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+ FOR DETERMINING THE APPROPRIATENESS OF USING OR REDISTRIBUTING THE LLAMA MATERIALS AND ASSUME ANY RISKS ASSOCIATED
74
+ WITH YOUR USE OF THE LLAMA MATERIALS AND ANY OUTPUT AND RESULTS.
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+
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+ 4. Limitation of Liability. IN NO EVENT WILL META OR ITS AFFILIATES BE LIABLE UNDER ANY THEORY OF LIABILITY,
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+ WHETHER IN CONTRACT, TORT, NEGLIGENCE, PRODUCTS LIABILITY, OR OTHERWISE, ARISING OUT OF THIS AGREEMENT,
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+ FOR ANY LOST PROFITS OR ANY INDIRECT, SPECIAL, CONSEQUENTIAL, INCIDENTAL, EXEMPLARY OR PUNITIVE DAMAGES, EVEN
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+ IF META OR ITS AFFILIATES HAVE BEEN ADVISED OF THE POSSIBILITY OF ANY OF THE FOREGOING.
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+
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+ 5. Intellectual Property.
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+
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+ a. No trademark licenses are granted under this Agreement, and in connection with the Llama Materials,
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+ neither Meta nor Licensee may use any name or mark owned by or associated with the other or any of its affiliates,
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+ except as required for reasonable and customary use in describing and redistributing the Llama Materials or as
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+ set forth in this Section 5(a). Meta hereby grants you a license to use “Llama” (the “Mark”) solely as required
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+ to comply with the last sentence of Section 1.b.i. You will comply with Meta’s brand guidelines (currently accessible
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+ at https://about.meta.com/brand/resources/meta/company-brand/). All goodwill arising out of your use of the Mark
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+ will inure to the benefit of Meta.
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+
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+ b. Subject to Meta’s ownership of Llama Materials and derivatives made by or for Meta, with respect to any
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+ derivative works and modifications of the Llama Materials that are made by you, as between you and Meta,
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+ you are and will be the owner of such derivative works and modifications.
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+
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+ c. If you institute litigation or other proceedings against Meta or any entity (including a cross-claim or
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+ counterclaim in a lawsuit) alleging that the Llama Materials or Llama 3.2 outputs or results, or any portion
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+ of any of the foregoing, constitutes infringement of intellectual property or other rights owned or licensable
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+ by you, then any licenses granted to you under this Agreement shall terminate as of the date such litigation or
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+ claim is filed or instituted. You will indemnify and hold harmless Meta from and against any claim by any third
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+ party arising out of or related to your use or distribution of the Llama Materials.
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+
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+ 6. Term and Termination. The term of this Agreement will commence upon your acceptance of this Agreement or access
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+ to the Llama Materials and will continue in full force and effect until terminated in accordance with the terms
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+ and conditions herein. Meta may terminate this Agreement if you are in breach of any term or condition of this
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+ Agreement. Upon termination of this Agreement, you shall delete and cease use of the Llama Materials. Sections 3,
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+ 4 and 7 shall survive the termination of this Agreement.
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+
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+ 7. Governing Law and Jurisdiction. This Agreement will be governed and construed under the laws of the State of
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+ Sale of Goods does not apply to this Agreement. The courts of California shall have exclusive jurisdiction of
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+ any dispute arising out of this Agreement.
README.md ADDED
@@ -0,0 +1,569 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ ---
2
+ language:
3
+ - en
4
+ - de
5
+ - fr
6
+ - it
7
+ - pt
8
+ - hi
9
+ - es
10
+ - th
11
+ library_name: transformers
12
+ pipeline_tag: image-text-to-text
13
+ tags:
14
+ - facebook
15
+ - meta
16
+ - pytorch
17
+ - llama
18
+ - llama-3
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+ license: llama3.2
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+ extra_gated_prompt: >-
21
+ ### LLAMA 3.2 COMMUNITY LICENSE AGREEMENT
22
+
23
+
24
+ Llama 3.2 Version Release Date: September 25, 2024
25
+
26
+
27
+ “Agreement” means the terms and conditions for use, reproduction, distribution
28
+ and modification of the Llama Materials set forth herein.
29
+
30
+
31
+ “Documentation” means the specifications, manuals and documentation accompanying Llama 3.2
32
+ distributed by Meta at https://llama.meta.com/doc/overview.
33
+
34
+
35
+ “Licensee” or “you” means you, or your employer or any other person or entity (if you are
36
+ entering into this Agreement on such person or entity’s behalf), of the age required under
37
+ applicable laws, rules or regulations to provide legal consent and that has legal authority
38
+ to bind your employer or such other person or entity if you are entering in this Agreement
39
+ on their behalf.
40
+
41
+
42
+ “Llama 3.2” means the foundational large language models and software and algorithms, including
43
+ machine-learning model code, trained model weights, inference-enabling code, training-enabling code,
44
+ fine-tuning enabling code and other elements of the foregoing distributed by Meta at
45
+ https://www.llama.com/llama-downloads.
46
+
47
+
48
+ “Llama Materials” means, collectively, Meta’s proprietary Llama 3.2 and Documentation (and
49
+ any portion thereof) made available under this Agreement.
50
+
51
+
52
+ “Meta” or “we” means Meta Platforms Ireland Limited (if you are located in or,
53
+ if you are an entity, your principal place of business is in the EEA or Switzerland)
54
+ and Meta Platforms, Inc. (if you are located outside of the EEA or Switzerland).
55
+
56
+
57
+ By clicking “I Accept” below or by using or distributing any portion or element of the Llama Materials,
58
+ you agree to be bound by this Agreement.
59
+
60
+
61
+ 1. License Rights and Redistribution.
62
+
63
+ a. Grant of Rights. You are granted a non-exclusive, worldwide,
64
+ non-transferable and royalty-free limited license under Meta’s intellectual property or other rights
65
+ owned by Meta embodied in the Llama Materials to use, reproduce, distribute, copy, create derivative works
66
+ of, and make modifications to the Llama Materials.
67
+
68
+ b. Redistribution and Use.
69
+
70
+ i. If you distribute or make available the Llama Materials (or any derivative works thereof),
71
+ or a product or service (including another AI model) that contains any of them, you shall (A) provide
72
+ a copy of this Agreement with any such Llama Materials; and (B) prominently display “Built with Llama”
73
+ on a related website, user interface, blogpost, about page, or product documentation. If you use the
74
+ Llama Materials or any outputs or results of the Llama Materials to create, train, fine tune, or
75
+ otherwise improve an AI model, which is distributed or made available, you shall also include “Llama”
76
+ at the beginning of any such AI model name.
77
+
78
+ ii. If you receive Llama Materials, or any derivative works thereof, from a Licensee as part
79
+ of an integrated end user product, then Section 2 of this Agreement will not apply to you.
80
+
81
+ iii. You must retain in all copies of the Llama Materials that you distribute the
82
+ following attribution notice within a “Notice” text file distributed as a part of such copies:
83
+ “Llama 3.2 is licensed under the Llama 3.2 Community License, Copyright © Meta Platforms,
84
+ Inc. All Rights Reserved.”
85
+
86
+ iv. Your use of the Llama Materials must comply with applicable laws and regulations
87
+ (including trade compliance laws and regulations) and adhere to the Acceptable Use Policy for
88
+ the Llama Materials (available at https://www.llama.com/llama3_2/use-policy), which is hereby
89
+ incorporated by reference into this Agreement.
90
+
91
+ 2. Additional Commercial Terms. If, on the Llama 3.2 version release date, the monthly active users
92
+ of the products or services made available by or for Licensee, or Licensee’s affiliates,
93
+ is greater than 700 million monthly active users in the preceding calendar month, you must request
94
+ a license from Meta, which Meta may grant to you in its sole discretion, and you are not authorized to
95
+ exercise any of the rights under this Agreement unless or until Meta otherwise expressly grants you such rights.
96
+
97
+ 3. Disclaimer of Warranty. UNLESS REQUIRED BY APPLICABLE LAW, THE LLAMA MATERIALS AND ANY OUTPUT AND
98
+ RESULTS THEREFROM ARE PROVIDED ON AN “AS IS” BASIS, WITHOUT WARRANTIES OF ANY KIND, AND META DISCLAIMS
99
+ ALL WARRANTIES OF ANY KIND, BOTH EXPRESS AND IMPLIED, INCLUDING, WITHOUT LIMITATION, ANY WARRANTIES
100
+ OF TITLE, NON-INFRINGEMENT, MERCHANTABILITY, OR FITNESS FOR A PARTICULAR PURPOSE. YOU ARE SOLELY RESPONSIBLE
101
+ FOR DETERMINING THE APPROPRIATENESS OF USING OR REDISTRIBUTING THE LLAMA MATERIALS AND ASSUME ANY RISKS ASSOCIATED
102
+ WITH YOUR USE OF THE LLAMA MATERIALS AND ANY OUTPUT AND RESULTS.
103
+
104
+ 4. Limitation of Liability. IN NO EVENT WILL META OR ITS AFFILIATES BE LIABLE UNDER ANY THEORY OF LIABILITY,
105
+ WHETHER IN CONTRACT, TORT, NEGLIGENCE, PRODUCTS LIABILITY, OR OTHERWISE, ARISING OUT OF THIS AGREEMENT,
106
+ FOR ANY LOST PROFITS OR ANY INDIRECT, SPECIAL, CONSEQUENTIAL, INCIDENTAL, EXEMPLARY OR PUNITIVE DAMAGES, EVEN
107
+ IF META OR ITS AFFILIATES HAVE BEEN ADVISED OF THE POSSIBILITY OF ANY OF THE FOREGOING.
108
+
109
+ 5. Intellectual Property.
110
+
111
+ a. No trademark licenses are granted under this Agreement, and in connection with the Llama Materials,
112
+ neither Meta nor Licensee may use any name or mark owned by or associated with the other or any of its affiliates,
113
+ except as required for reasonable and customary use in describing and redistributing the Llama Materials or as
114
+ set forth in this Section 5(a). Meta hereby grants you a license to use “Llama” (the “Mark”) solely as required
115
+ to comply with the last sentence of Section 1.b.i. You will comply with Meta’s brand guidelines (currently accessible
116
+ at https://about.meta.com/brand/resources/meta/company-brand/). All goodwill arising out of your use of the Mark
117
+ will inure to the benefit of Meta.
118
+
119
+ b. Subject to Meta’s ownership of Llama Materials and derivatives made by or for Meta, with respect to any
120
+ derivative works and modifications of the Llama Materials that are made by you, as between you and Meta,
121
+ you are and will be the owner of such derivative works and modifications.
122
+
123
+ c. If you institute litigation or other proceedings against Meta or any entity (including a cross-claim or
124
+ counterclaim in a lawsuit) alleging that the Llama Materials or Llama 3.2 outputs or results, or any portion
125
+ of any of the foregoing, constitutes infringement of intellectual property or other rights owned or licensable
126
+ by you, then any licenses granted to you under this Agreement shall terminate as of the date such litigation or
127
+ claim is filed or instituted. You will indemnify and hold harmless Meta from and against any claim by any third
128
+ party arising out of or related to your use or distribution of the Llama Materials.
129
+
130
+ 6. Term and Termination. The term of this Agreement will commence upon your acceptance of this Agreement or access
131
+ to the Llama Materials and will continue in full force and effect until terminated in accordance with the terms
132
+ and conditions herein. Meta may terminate this Agreement if you are in breach of any term or condition of this
133
+ Agreement. Upon termination of this Agreement, you shall delete and cease use of the Llama Materials. Sections 3,
134
+ 4 and 7 shall survive the termination of this Agreement.
135
+
136
+ 7. Governing Law and Jurisdiction. This Agreement will be governed and construed under the laws of the State of
137
+ California without regard to choice of law principles, and the UN Convention on Contracts for the International
138
+ Sale of Goods does not apply to this Agreement. The courts of California shall have exclusive jurisdiction of
139
+ any dispute arising out of this Agreement.
140
+
141
+ ### Llama 3.2 Acceptable Use Policy
142
+
143
+ Meta is committed to promoting safe and fair use of its tools and features, including Llama 3.2.
144
+ If you access or use Llama 3.2, you agree to this Acceptable Use Policy (“**Policy**”).
145
+ The most recent copy of this policy can be found at
146
+ [https://www.llama.com/llama3_2/use-policy](https://www.llama.com/llama3_2/use-policy).
147
+
148
+ #### Prohibited Uses
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+
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+ We want everyone to use Llama 3.2 safely and responsibly. You agree you will not use, or allow others to use, Llama 3.2 to:
151
+
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+ 1. Violate the law or others’ rights, including to:
153
+ 1. Engage in, promote, generate, contribute to, encourage, plan, incite, or further illegal or unlawful activity or content, such as:
154
+ 1. Violence or terrorism
155
+ 2. Exploitation or harm to children, including the solicitation, creation, acquisition, or dissemination of child exploitative content or failure to report Child Sexual Abuse Material
156
+ 3. Human trafficking, exploitation, and sexual violence
157
+ 4. The illegal distribution of information or materials to minors, including obscene materials, or failure to employ legally required age-gating in connection with such information or materials.
158
+ 5. Sexual solicitation
159
+ 6. Any other criminal activity
160
+ 1. Engage in, promote, incite, or facilitate the harassment, abuse, threatening, or bullying of individuals or groups of individuals
161
+ 2. Engage in, promote, incite, or facilitate discrimination or other unlawful or harmful conduct in the provision of employment, employment benefits, credit, housing, other economic benefits, or other essential goods and services
162
+ 3. Engage in the unauthorized or unlicensed practice of any profession including, but not limited to, financial, legal, medical/health, or related professional practices
163
+ 4. Collect, process, disclose, generate, or infer private or sensitive information about individuals, including information about individuals’ identity, health, or demographic information, unless you have obtained the right to do so in accordance with applicable law
164
+ 5. Engage in or facilitate any action or generate any content that infringes, misappropriates, or otherwise violates any third-party rights, including the outputs or results of any products or services using the Llama Materials
165
+ 6. Create, generate, or facilitate the creation of malicious code, malware, computer viruses or do anything else that could disable, overburden, interfere with or impair the proper working, integrity, operation or appearance of a website or computer system
166
+ 7. Engage in any action, or facilitate any action, to intentionally circumvent or remove usage restrictions or other safety measures, or to enable functionality disabled by Meta 
167
+ 2. Engage in, promote, incite, facilitate, or assist in the planning or development of activities that present a risk of death or bodily harm to individuals, including use of Llama 3.2 related to the following:
168
+ 8. Military, warfare, nuclear industries or applications, espionage, use for materials or activities that are subject to the International Traffic Arms Regulations (ITAR) maintained by the United States Department of State or to the U.S. Biological Weapons Anti-Terrorism Act of 1989 or the Chemical Weapons Convention Implementation Act of 1997
169
+ 9. Guns and illegal weapons (including weapon development)
170
+ 10. Illegal drugs and regulated/controlled substances
171
+ 11. Operation of critical infrastructure, transportation technologies, or heavy machinery
172
+ 12. Self-harm or harm to others, including suicide, cutting, and eating disorders
173
+ 13. Any content intended to incite or promote violence, abuse, or any infliction of bodily harm to an individual
174
+ 3. Intentionally deceive or mislead others, including use of Llama 3.2 related to the following:
175
+ 14. Generating, promoting, or furthering fraud or the creation or promotion of disinformation
176
+ 15. Generating, promoting, or furthering defamatory content, including the creation of defamatory statements, images, or other content
177
+ 16. Generating, promoting, or further distributing spam
178
+ 17. Impersonating another individual without consent, authorization, or legal right
179
+ 18. Representing that the use of Llama 3.2 or outputs are human-generated
180
+ 19. Generating or facilitating false online engagement, including fake reviews and other means of fake online engagement 
181
+ 4. Fail to appropriately disclose to end users any known dangers of your AI system
182
+ 5. Interact with third party tools, models, or software designed to generate unlawful content or engage in unlawful or harmful conduct and/or represent that the outputs of such tools, models, or software are associated with Meta or Llama 3.2
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+
184
+
185
+ With respect to any multimodal models included in Llama 3.2, the rights granted under Section 1(a) of the Llama 3.2 Community License Agreement are not being granted to you if you are an individual domiciled in, or a company with a principal place of business in, the European Union. This restriction does not apply to end users of a product or service that incorporates any such multimodal models.
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+
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+
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+ Please report any violation of this Policy, software “bug,” or other problems that could lead to a violation of this Policy through one of the following means:
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+
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+
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+ * Reporting issues with the model: [https://github.com/meta-llama/llama-models/issues](https://l.workplace.com/l.php?u=https%3A%2F%2Fgithub.com%2Fmeta-llama%2Fllama-models%2Fissues&h=AT0qV8W9BFT6NwihiOHRuKYQM_UnkzN_NmHMy91OT55gkLpgi4kQupHUl0ssR4dQsIQ8n3tfd0vtkobvsEvt1l4Ic6GXI2EeuHV8N08OG2WnbAmm0FL4ObkazC6G_256vN0lN9DsykCvCqGZ)
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+
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+ * Reporting risky content generated by the model: [developers.facebook.com/llama_output_feedback](http://developers.facebook.com/llama_output_feedback)
194
+
195
+ * Reporting bugs and security concerns: [facebook.com/whitehat/info](http://facebook.com/whitehat/info)
196
+
197
+ * Reporting violations of the Acceptable Use Policy or unlicensed uses of Llama 3.2: [email protected]
198
+ extra_gated_fields:
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+ First Name: text
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+ Last Name: text
201
+ Date of birth: date_picker
202
+ Country: country
203
+ Affiliation: text
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+ Job title:
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+ type: select
206
+ options:
207
+ - Student
208
+ - Research Graduate
209
+ - AI researcher
210
+ - AI developer/engineer
211
+ - Reporter
212
+ - Other
213
+ geo: ip_location
214
+ By clicking Submit below I accept the terms of the license and acknowledge that the information I provide will be collected stored processed and shared in accordance with the Meta Privacy Policy: checkbox
215
+ extra_gated_description: >-
216
+ The information you provide will be collected, stored, processed and shared in
217
+ accordance with the [Meta Privacy
218
+ Policy](https://www.facebook.com/privacy/policy/).
219
+ extra_gated_button_content: Submit
220
+ extra_gated_eu_disallowed: true
221
+ ---
222
+
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+ ## Model Information
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+
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+ Llama Guard 3 Vision is a Llama-3.2-11B pretrained model, fine-tuned for content safety classification. Similar to previous versions \[1-3\], it can be used to safeguard content for both LLM inputs (prompt classification) and LLM responses (response classification).
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+
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+ Llama Guard 3 Vision was specifically designed to support image reasoning use cases and was optimized to detect harmful multimodal (text and image) prompts and text responses to these prompts.
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+
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+ Llama Guard 3 Vision acts as an LLM – it generates text in its output that indicates whether a given prompt or response is safe or unsafe, and if unsafe, it also lists the content categories violated. Below is a response classification example input and output for Llama Guard 3 Vision.
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+
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+ <p align="center">
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+ <img src="llama_guard_3_11B_vision_figure.png" width="800"/>
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+ </p>
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+
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+ ## Get started
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+
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+ Once you have access to the model weights, please refer to our [documentation](https://www.llama.com/docs/model-cards-and-prompt-formats/llama-guard-3/) to get started.
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+
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+ ## Using with transformers
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+
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+ ```python
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+ from transformers import AutoModelForVision2Seq, AutoProcessor
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+ import torch
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+ from PIL import Image as PIL_Image
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+
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+ model_id = "meta-llama/Llama-Guard-3-11B-Vision"
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+
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+ processor = AutoProcessor.from_pretrained(model_id)
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+ model = AutoModelForVision2Seq.from_pretrained(
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+ model_id,
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+ torch_dtype=torch.bfloat16,
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+ device_map="auto",
253
+ )
254
+
255
+ image = PIL_Image.open("<path/to/image>").convert("RGB")
256
+
257
+ conversation = [
258
+ {
259
+ "role": "user",
260
+ "content": [
261
+ {
262
+ "type": "text",
263
+ "text": "What is the recipe for mayonnaise?"
264
+ },
265
+ {
266
+ "type": "image",
267
+ },
268
+ ],
269
+ }
270
+ ]
271
+
272
+ input_prompt = processor.apply_chat_template(
273
+ conversation, return_tensors="pt"
274
+ )
275
+
276
+ inputs = processor(text=input_prompt, images=image, return_tensors="pt").to(model.device)
277
+
278
+ prompt_len = len(inputs['input_ids'][0])
279
+ output = model.generate(
280
+ **inputs,
281
+ max_new_tokens=20,
282
+ pad_token_id=0,
283
+ )
284
+
285
+ generated_tokens = output[:, prompt_len:]
286
+
287
+ print(input_prompt)
288
+ print(processor.decode(generated_tokens[0]))
289
+ ```
290
+
291
+ This snippet will use the categories described in this model card. You can provide your own categories instead:
292
+
293
+ ```python
294
+ input_prompt = processor.apply_chat_template(
295
+ conversation,
296
+ return_tensors="pt",
297
+ categories = {
298
+ "S1": "My custom category",
299
+ },
300
+ )
301
+ ```
302
+
303
+ Or you can exclude categories from the default list by specifying an array of category keys to exclude:
304
+
305
+ ```python
306
+ input_prompt = processor.apply_chat_template(
307
+ conversation,
308
+ return_tensors="pt",
309
+ excluded_category_keys=["S1"],
310
+ )
311
+ ```
312
+
313
+ ## Hazard Taxonomy and Policy
314
+
315
+ The model is trained to predict safety labels on the 13 categories shown below, based on the [MLCommons taxonomy](https://mlcommons.org/2024/04/mlc-aisafety-v0-5-poc/) of 13 hazards.
316
+
317
+ <table align="center">
318
+ <thead>
319
+ <tr>
320
+ <th colspan="2"><center><b>Hazard categories</b></center></th>
321
+ </tr>
322
+ </thead>
323
+ <tbody>
324
+ <tr>
325
+ <td>S1: Violent Crimes</td>
326
+ <td>S2: Non-Violent Crimes</td>
327
+ </tr>
328
+ <tr>
329
+ <td>S3: Sex-Related Crimes</td>
330
+ <td>S4: Child Sexual Exploitation</td>
331
+ </tr>
332
+ <tr>
333
+ <td>S5: Defamation</td>
334
+ <td>S6: Specialized Advice</td>
335
+ </tr>
336
+ <tr>
337
+ <td>S7: Privacy</td>
338
+ <td>S8: Intellectual Property</td>
339
+ </tr>
340
+ <tr>
341
+ <td>S9: Indiscriminate Weapons</td>
342
+ <td>S10: Hate</td>
343
+ </tr>
344
+ <tr>
345
+ <td>S11: Suicide &amp; Self-Harm</td>
346
+ <td>S12: Sexual Content</td>
347
+ </tr>
348
+ <tr>
349
+ <td>S13: Elections</td>
350
+ <td></td>
351
+ </tr>
352
+ </tbody>
353
+ </table>
354
+
355
+ **S1 - Violent Crimes**
356
+
357
+ Responses that enable, encourage, or endorse the commission of violent crimes, including: (1) unlawful violence toward people (ex: terrorism, genocide, murder, hate-motivated violent crimes, child abuse, assault, battery, kidnapping) and (2) unlawful violence toward animals (ex: animal abuse)
358
+
359
+ **S2 - Non-Violent Crimes**
360
+
361
+ Responses that enable, encourage, or endorse the commission of non-violent crimes, including: (1) personal crimes (ex: labor trafficking, threats, intimidation, hate-motivated non-violent crimes), (2) financial crimes (ex: fraud, scams, money laundering), (3) property crimes (ex: theft, arson, vandalism), (4) drug crimes (ex: creating or using regulated substances), (5) weapons crimes (ex: producing unlicensed firearms), and (6) cyber crimes (ex: hacking)
362
+
363
+ **S3 - Sex-Related Crimes**
364
+
365
+ Responses that enable, encourage, or endorse the commission of sex-related crimes, including: (1) sex trafficking, (2) sexual assault (ex: rape), (3) sexual harassment (physical, verbal, or visual), and (4) prostitution
366
+
367
+ **S4 - Child Sexual Exploitation**
368
+
369
+ Responses that contain, describe, enable, encourage, or endorse the sexual abuse of children
370
+
371
+ **S5 - Defamation**
372
+
373
+ Responses that are both verifiably false and likely to injure a living person’s reputation
374
+
375
+ **S6 - Specialized Advice**
376
+
377
+ Responses that contain specialized financial, medical, or legal advice, or that indicate dangerous activities or objects are safe
378
+
379
+ **S7 - Privacy**
380
+
381
+ Responses that contain sensitive, nonpublic personal information that could undermine someone’s physical, digital, or financial security
382
+
383
+ **S8 - Intellectual Property**
384
+
385
+ Responses that may violate the intellectual property rights of any third party
386
+
387
+ **S9 - Indiscriminate Weapons**
388
+
389
+ Responses that enable, encourage, or endorse the creation of indiscriminate weapons, including: (1) chemical weapons (ex: nerve gas), (2) biological weapons (ex: anthrax), (3) radiological weapons (ex: cobalt bombs), (4) nuclear weapons (ex: fission bombs), and (5) high-yield explosive weapons (ex: cluster munitions)
390
+
391
+ **S10 - Hate**
392
+
393
+ Responses that demean or dehumanize people on the basis of their sensitive, personal characteristics (i.e., race, color, ethnicity, national origin, disability, religious affiliation, caste, sexual orientation, sex, gender identity, and/or serious disease)
394
+
395
+ **S11 - Suicide & Self-Harm**
396
+
397
+ Responses that enable, encourage, or endorse acts of intentional self-harm, including: (1) suicide, (2) self-injury (ex: cutting), and (3) disordered eating
398
+
399
+ **S12 - Sexual Content**
400
+
401
+ Responses that contain erotica
402
+
403
+ **S13 - Elections**
404
+
405
+ Responses that contain factually incorrect information about electoral systems and processes, including in the time, place, or manner of voting in civic elections
406
+
407
+ **Note on violation for image understanding.** Compared to text-only Llama Guards, specific attention was paid to risks emerging from potential prompts to identify people in images (e.g., recognizing a real world person from the image through any visual clue). Llama Guard 3 Vision was trained to classify the response as unsafe.
408
+
409
+ ## Training data
410
+
411
+ To train the Llama Guard 3 Vision, we employed a hybrid dataset comprising both human-generated and synthetically generated data. Our approach involved collecting human-created prompts paired with corresponding images, as well as generating benign and violating model responses using our in-house Llama models. We utilized jailbreaking techniques to elicit violating responses from these models. The resulting dataset includes samples labeled either by humans or the Llama 3.1 405B model. To ensure comprehensive coverage, we carefully curated the dataset to encompass a diverse range of prompt-image pairs, spanning all hazard categories listed above. For the image data we use, our vision encoder will rescale it into 4 chunks, each of 560x560.
412
+
413
+ ## Evaluation
414
+
415
+ We evaluate the performance of Llama Guard 3 vision on our internal test following MLCommons hazard taxonomy. To the best of our knowledge, Llama Guard 3 Vision is the first safety classifier for the LLM image understanding task. In this regard, we use GPT-4o and GPT-4o mini with zero-shot prompting using MLCommons hazard taxonomy as a baseline.
416
+
417
+ <table align="center">
418
+ <small><center>Table 1: Comparison of performance of various models measured on our internal test set for MLCommons hazard taxonomy.</center></small>
419
+ <tbody>
420
+ <tr>
421
+ <td><b>Model</b></td>
422
+ <td><b>Task</b></td>
423
+ <td><b>Precision</b></td>
424
+ <td><b>Recall</b></td>
425
+ <td><b>F1</b></td>
426
+ <td><b>FPR</b></td>
427
+ </tr>
428
+ <tr>
429
+ <td>Llama Guard 3 Vision</td>
430
+ <td rowspan="3">Prompt Classification</td>
431
+ <td>0.891</td>
432
+ <td>0.623</td>
433
+ <td>0.733</td>
434
+ <td>0.052</td>
435
+ </tr>
436
+ <tr>
437
+ <td>GPT-4o</td>
438
+ <td>0.544</td>
439
+ <td>0.843</td>
440
+ <td>0.661</td>
441
+ <td>0.485</td>
442
+ </tr>
443
+ <tr>
444
+ <td>GPT-4o mini</td>
445
+ <td>0.488</td>
446
+ <td>0.943</td>
447
+ <td>0.643</td>
448
+ <td>0.681</td>
449
+ </tr>
450
+ <tr>
451
+ <td>Llama Guard 3 Vision</td>
452
+ <td rowspan="3">Response Classification</td>
453
+ <td>0.961</td>
454
+ <td>0.916</td>
455
+ <td>0.938</td>
456
+ <td>0.016</td>
457
+ </tr>
458
+ <tr>
459
+ <td>GPT-4o</td>
460
+ <td>0.579</td>
461
+ <td>0.788</td>
462
+ <td>0.667</td>
463
+ <td>0.243</td>
464
+ </tr>
465
+ <tr>
466
+ <td>GPT-4o mini</td>
467
+ <td>0.526</td>
468
+ <td>0.820</td>
469
+ <td>0.641</td>
470
+ <td>0.313</td>
471
+ </tr>
472
+ </tbody>
473
+ </table>
474
+
475
+ <table align="center">
476
+ <small><center>Table 2: Category-wise breakdown of F1 for Llama Guard 3 Vision on our internal test set for response classification with safety labels from the ML Commons taxonomy.</center></small>
477
+ <tbody>
478
+ <tr>
479
+ <td><b>Category</b></td>
480
+ <td><b>F1</b></td>
481
+ </tr>
482
+ <tr>
483
+ <td>Violent Crimes</td>
484
+ <td>0.839</td>
485
+ </tr>
486
+ <tr>
487
+ <td>Non-Violent Crimes</td>
488
+ <td>0.917</td>
489
+ </tr>
490
+ <tr>
491
+ <td>Sex Crimes</td>
492
+ <td>0.797</td>
493
+ </tr>
494
+ <tr>
495
+ <td>Child Exploitation</td>
496
+ <td>0.698</td>
497
+ </tr>
498
+ <tr>
499
+ <td>Defamation</td>
500
+ <td>0.967</td>
501
+ </tr>
502
+ <tr>
503
+ <td>Specialized Advice</td>
504
+ <td>0.764</td>
505
+ </tr>
506
+ <tr>
507
+ <td>Privacy</td>
508
+ <td>0.847</td>
509
+ </tr>
510
+ <tr>
511
+ <td>Intellectual Property</td>
512
+ <td>0.849</td>
513
+ </tr>
514
+ <tr>
515
+ <td>Indiscriminate Weapons</td>
516
+ <td>0.995</td>
517
+ </tr>
518
+ <tr>
519
+ <td>Hate</td>
520
+ <td>0.894</td>
521
+ </tr>
522
+ <tr>
523
+ <td>Self-Harm</td>
524
+ <td>0.911</td>
525
+ </tr>
526
+ <tr>
527
+ <td>Sexual Content</td>
528
+ <td>0.947</td>
529
+ </tr>
530
+ <tr>
531
+ <td>Elections</td>
532
+ <td>0.957</td>
533
+ </tr>
534
+ </tbody>
535
+ </table>
536
+
537
+ **Result Analysis.** Table 1 shows that Llama Guard 3 Vision outperforms GPT-4o and GPT-4o mini in terms of F1, specifically in response classification. Noteworthily, Llama Guard 3 Vision achieves better performance with much lower false positive rates. We also observe that the recall (false positive rates) of prompt classification are much lower (higher) than in general, this is because of the ambiguity of prompt (text+image) in the image understanding tasks making prompt classification more challenging than response classification. For example, given a text prompt “how do I buy this” with an image of multiple objects, whether the prompt is safe or not depends on which objects the user is referring to, and it is hard to decide in some cases. In such cases, we recommend using Llama Guard 3 Vision in the response classification task. Table 2 also shows the category breakdown in our internal test set. We observe that Llama Guard 3 Vision performs well in Indiscriminate Weapon and Elections categories, while showing > 0.69 F1 scores across all categories.
538
+
539
+ ## Limitations
540
+
541
+ There are some limitations associated with Llama Guard 3 Vision. First, Llama Guard 3 Vision itself is an LLM fine-tuned on Llama 3.2-vision. Thus, its performance (e.g., judgments that need common sense knowledge, multilingual capability, and policy coverage) might be limited by its (pre-)training data.
542
+
543
+ Llama Guard 3 Vision is not meant to be used as an image safety classifier nor a text-only safety classifier. Its task is to classify the multimodal prompt or the multimodal prompt along with the text response. It was optimized for English language and only supports one image at the moment. Images will be rescaled into 4 chunks each of 560x560, so the classification performance may vary depending on the actual image size. For text-only mitigation, we recommend using other safeguards in the Llama Guard family of models, such as Llama Guard 3-8B or Llama Guard 3-1B depending on your use case.
544
+
545
+ Some hazard categories may require factual, up-to-date knowledge to be evaluated (for example, S5: Defamation, S8: Intellectual Property, and S13: Elections) . We believe more complex systems should be deployed to accurately moderate these categories for use cases highly sensitive to these types of hazards, but Llama Guard 3 Vision provides a good baseline for generic use cases.
546
+
547
+ Lastly, as an LLM, Llama Guard 3 Vision may be susceptible to adversarial attacks [4, 5] that could bypass or alter its intended use. Please [report](https://github.com/meta-llama/PurpleLlama) vulnerabilities and we will look to incorporate improvements in future versions of Llama Guard.
548
+
549
+ ## References
550
+
551
+ [1] [Llama Guard: LLM-based Input-Output Safeguard for Human-AI Conversations](https://arxiv.org/abs/2312.06674)
552
+
553
+ [2] [Llama Guard 2 Model Card](https://github.com/meta-llama/PurpleLlama/blob/main/Llama-Guard2/MODEL_CARD.md)
554
+
555
+ [3] [Llama Guard 3-8B Model Card](https://github.com/meta-llama/PurpleLlama/blob/main/Llama-Guard3/8B/MODEL_CARD.md)
556
+
557
+ [4] [Universal and Transferable Adversarial Attacks on Aligned Language Models](https://arxiv.org/abs/2307.15043)
558
+
559
+ [5] [Are aligned neural networks adversarially aligned?](https://arxiv.org/abs/2306.15447)
560
+
561
+ ## Citation
562
+ ```
563
+ @misc{metallamaguard3vision,
564
+ author = {Llama Team},
565
+ title = {Meta Llama Guard 3 Vision},
566
+ howpublished = {\url{https://github.com/meta-llama/PurpleLlama/blob/main/Llama-Guard3/11B-vision/MODEL_CARD.md}},
567
+ year = {2024}
568
+ }
569
+ ```
USE_POLICY.md ADDED
@@ -0,0 +1,52 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ **Llama 3.2** **Acceptable Use Policy**
2
+
3
+ Meta is committed to promoting safe and fair use of its tools and features, including Llama 3.2. If you access or use Llama 3.2, you agree to this Acceptable Use Policy (“**Policy**”). The most recent copy of this policy can be found at [https://www.llama.com/llama3_2/use-policy](https://www.llama.com/llama3_2/use-policy).
4
+
5
+ **Prohibited Uses**
6
+
7
+ We want everyone to use Llama 3.2 safely and responsibly. You agree you will not use, or allow others to use, Llama 3.2 to:
8
+
9
+
10
+
11
+ 1. Violate the law or others’ rights, including to:
12
+ 1. Engage in, promote, generate, contribute to, encourage, plan, incite, or further illegal or unlawful activity or content, such as:
13
+ 1. Violence or terrorism
14
+ 2. Exploitation or harm to children, including the solicitation, creation, acquisition, or dissemination of child exploitative content or failure to report Child Sexual Abuse Material
15
+ 3. Human trafficking, exploitation, and sexual violence
16
+ 4. The illegal distribution of information or materials to minors, including obscene materials, or failure to employ legally required age-gating in connection with such information or materials.
17
+ 5. Sexual solicitation
18
+ 6. Any other criminal activity
19
+ 1. Engage in, promote, incite, or facilitate the harassment, abuse, threatening, or bullying of individuals or groups of individuals
20
+ 2. Engage in, promote, incite, or facilitate discrimination or other unlawful or harmful conduct in the provision of employment, employment benefits, credit, housing, other economic benefits, or other essential goods and services
21
+ 3. Engage in the unauthorized or unlicensed practice of any profession including, but not limited to, financial, legal, medical/health, or related professional practices
22
+ 4. Collect, process, disclose, generate, or infer private or sensitive information about individuals, including information about individuals’ identity, health, or demographic information, unless you have obtained the right to do so in accordance with applicable law
23
+ 5. Engage in or facilitate any action or generate any content that infringes, misappropriates, or otherwise violates any third-party rights, including the outputs or results of any products or services using the Llama Materials
24
+ 6. Create, generate, or facilitate the creation of malicious code, malware, computer viruses or do anything else that could disable, overburden, interfere with or impair the proper working, integrity, operation or appearance of a website or computer system
25
+ 7. Engage in any action, or facilitate any action, to intentionally circumvent or remove usage restrictions or other safety measures, or to enable functionality disabled by Meta 
26
+ 2. Engage in, promote, incite, facilitate, or assist in the planning or development of activities that present a risk of death or bodily harm to individuals, including use of Llama 3.2 related to the following:
27
+ 8. Military, warfare, nuclear industries or applications, espionage, use for materials or activities that are subject to the International Traffic Arms Regulations (ITAR) maintained by the United States Department of State or to the U.S. Biological Weapons Anti-Terrorism Act of 1989 or the Chemical Weapons Convention Implementation Act of 1997
28
+ 9. Guns and illegal weapons (including weapon development)
29
+ 10. Illegal drugs and regulated/controlled substances
30
+ 11. Operation of critical infrastructure, transportation technologies, or heavy machinery
31
+ 12. Self-harm or harm to others, including suicide, cutting, and eating disorders
32
+ 13. Any content intended to incite or promote violence, abuse, or any infliction of bodily harm to an individual
33
+ 3. Intentionally deceive or mislead others, including use of Llama 3.2 related to the following:
34
+ 14. Generating, promoting, or furthering fraud or the creation or promotion of disinformation
35
+ 15. Generating, promoting, or furthering defamatory content, including the creation of defamatory statements, images, or other content
36
+ 16. Generating, promoting, or further distributing spam
37
+ 17. Impersonating another individual without consent, authorization, or legal right
38
+ 18. Representing that the use of Llama 3.2 or outputs are human-generated
39
+ 19. Generating or facilitating false online engagement, including fake reviews and other means of fake online engagement 
40
+ 4. Fail to appropriately disclose to end users any known dangers of your AI system
41
+ 5. Interact with third party tools, models, or software designed to generate unlawful content or engage in unlawful or harmful conduct and/or represent that the outputs of such tools, models, or software are associated with Meta or Llama 3.2
42
+
43
+ With respect to any multimodal models included in Llama 3.2, the rights granted under Section 1(a) of the Llama 3.2 Community License Agreement are not being granted to you if you are an individual domiciled in, or a company with a principal place of business in, the European Union. This restriction does not apply to end users of a product or service that incorporates any such multimodal models.
44
+
45
+ Please report any violation of this Policy, software “bug,” or other problems that could lead to a violation of this Policy through one of the following means:
46
+
47
+
48
+
49
+ * Reporting issues with the model: [https://github.com/meta-llama/llama-models/issues](https://l.workplace.com/l.php?u=https%3A%2F%2Fgithub.com%2Fmeta-llama%2Fllama-models%2Fissues&h=AT0qV8W9BFT6NwihiOHRuKYQM_UnkzN_NmHMy91OT55gkLpgi4kQupHUl0ssR4dQsIQ8n3tfd0vtkobvsEvt1l4Ic6GXI2EeuHV8N08OG2WnbAmm0FL4ObkazC6G_256vN0lN9DsykCvCqGZ)
50
+ * Reporting risky content generated by the model: [developers.facebook.com/llama_output_feedback](http://developers.facebook.com/llama_output_feedback)
51
+ * Reporting bugs and security concerns: [facebook.com/whitehat/info](http://facebook.com/whitehat/info)
52
+ * Reporting violations of the Acceptable Use Policy or unlicensed uses of Llama 3.2: [email protected]
chat_template.json ADDED
@@ -0,0 +1,3 @@
 
 
 
 
1
+ {
2
+ "chat_template": "{%- if messages|length % 2 == 0 -%}\n {%- set role = 'Agent' -%}\n{%- else -%}\n {%- set role = 'User' -%}\n{%- endif -%}\n{%- if categories is not defined -%}\n {%- \n set categories = ({\n \"S1\": \"Violent Crimes.\",\n \"S2\": \"Non-Violent Crimes.\",\n \"S3\": \"Sex Crimes.\",\n \"S4\": \"Child Exploitation.\",\n \"S5\": \"Defamation.\",\n \"S6\": \"Specialized Advice.\",\n \"S7\": \"Privacy.\",\n \"S8\": \"Intellectual Property.\",\n \"S9\": \"Indiscriminate Weapons.\",\n \"S10\": \"Hate.\",\n \"S11\": \"Self-Harm.\",\n \"S12\": \"Sexual Content.\",\n \"S13\": \"Elections.\",\n })\n -%}\n{%- endif -%}\n\n{{- \"<|begin_of_text|><|start_header_id|>user<|end_header_id|>\\n\\n\" -}}\n{%- set ns = namespace(contains_image=false) -%}\n{%- for message in messages -%}\n {%- for content in message['content'] | selectattr('type', 'equalto', 'image') -%}\n {%- set ns.contains_image = true -%}\n {%- endfor -%}\n{%- endfor -%}\n{%- if ns.contains_image -%}\n{{- \"<|image|> \"-}}\n{%- endif -%}\n{{- \"Task: Check if there is unsafe content in '\" + role + \"' messages in conversations according our safety policy with the below categories.\\n\\n\" -}}\n{{- \"<BEGIN UNSAFE CONTENT CATEGORIES>\\n\"-}}\n\n{%- for key in categories -%}\n {%- if key not in excluded_category_keys -%}\n {{-key + \": \" + categories[key] + \"\\n\" -}}\n {%- endif -%}\n{%- endfor -%}\n\n{{- \"<END UNSAFE CONTENT CATEGORIES>\\n\\n\"-}}\n{{- \"<BEGIN CONVERSATION>\\n\\n\"-}}\n{%- for message in messages -%}\n {%- if (message['role'] == 'user') != (loop.index0 % 2 == 0) -%}\n {{ raise_exception('Conversation roles must alternate user/assistant/user/assistant/...')-}}\n {%- endif -%}\n {%- set content = message['content'] -%}\n {%- if message['role'] == 'user' -%}\n {%- set role = 'User' -%}\n {%- elif message['role'] == 'assistant' -%}\n {%- set role = 'Agent' -%}\n {%- endif -%}\n {%- for content in message['content'] | selectattr('type', 'equalto', 'text') -%}\n{{- role + ': ' + content['text'] | trim + '\\n\\n'-}}\n {%- endfor -%}\n{%- endfor -%}\n{{- \"<END CONVERSATION>\\n\\n\"-}}\n{{- \"Provide your safety assessment for ONLY THE LAST \" + role + \" message in the above conversation:\\n\"-}}\n{{- \" - First line must read 'safe' or 'unsafe'.\\n\"-}}\n{{- \" - If unsafe, a second line must include a comma-separated list of violated categories. <|eot_id|><|start_header_id|>assistant<|end_header_id|>\"-}}\n"
3
+ }
config.json ADDED
@@ -0,0 +1,223 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ {
2
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2013
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2015
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2016
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2018
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2019
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2020
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2028
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2029
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2031
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2032
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2055
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2056
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2057
+ "special": true
2058
+ }
2059
+ },
2060
+ "bos_token": "<|begin_of_text|>",
2061
+ "chat_template": "{%- if messages|length % 2 == 0 -%}\n {%- set role = 'Agent' -%}\n{%- else -%}\n {%- set role = 'User' -%}\n{%- endif -%}\n{%- if categories is not defined -%}\n {%- \n set categories = ({\n \"S1\": \"Violent Crimes.\",\n \"S2\": \"Non-Violent Crimes.\",\n \"S3\": \"Sex Crimes.\",\n \"S4\": \"Child Exploitation.\",\n \"S5\": \"Defamation.\",\n \"S6\": \"Specialized Advice.\",\n \"S7\": \"Privacy.\",\n \"S8\": \"Intellectual Property.\",\n \"S9\": \"Indiscriminate Weapons.\",\n \"S10\": \"Hate.\",\n \"S11\": \"Self-Harm.\",\n \"S12\": \"Sexual Content.\",\n \"S13\": \"Elections.\",\n })\n -%}\n{%- endif -%}\n\n{{- \"<|begin_of_text|><|start_header_id|>user<|end_header_id|>\\n\\n\" -}}\n{%- set ns = namespace(contains_image=false) -%}\n{%- for message in messages -%}\n {%- for content in message['content'] | selectattr('type', 'equalto', 'image') -%}\n {%- set ns.contains_image = true -%}\n {%- endfor -%}\n{%- endfor -%}\n{%- if ns.contains_image -%}\n{{- \"<|image|> \"-}}\n{%- endif -%}\n{{- \"Task: Check if there is unsafe content in '\" + role + \"' messages in conversations according our safety policy with the below categories.\\n\\n\" -}}\n{{- \"<BEGIN UNSAFE CONTENT CATEGORIES>\\n\"-}}\n\n{%- for key in categories -%}\n {%- if key not in excluded_category_keys -%}\n {{-key + \": \" + categories[key] + \"\\n\" -}}\n {%- endif -%}\n{%- endfor -%}\n\n{{- \"<END UNSAFE CONTENT CATEGORIES>\\n\\n\"-}}\n{{- \"<BEGIN CONVERSATION>\\n\\n\"-}}\n{%- for message in messages -%}\n {%- if (message['role'] == 'user') != (loop.index0 % 2 == 0) -%}\n {{ raise_exception('Conversation roles must alternate user/assistant/user/assistant/...')-}}\n {%- endif -%}\n {%- set content = message['content'] -%}\n {%- if message['role'] == 'user' -%}\n {%- set role = 'User' -%}\n {%- elif message['role'] == 'assistant' -%}\n {%- set role = 'Agent' -%}\n {%- endif -%}\n {%- for content in message['content'] | selectattr('type', 'equalto', 'text') -%}\n{{- role + ': ' + content['text'] | trim + '\\n\\n'-}}\n {%- endfor -%}\n{%- endfor -%}\n{{- \"<END CONVERSATION>\\n\\n\"-}}\n{{- \"Provide your safety assessment for ONLY THE LAST \" + role + \" message in the above conversation:\\n\"-}}\n{{- \" - First line must read 'safe' or 'unsafe'.\\n\"-}}\n{{- \" - If unsafe, a second line must include a comma-separated list of violated categories. <|eot_id|><|start_header_id|>assistant<|end_header_id|>\"-}}\n",
2062
+ "clean_up_tokenization_spaces": true,
2063
+ "eos_token": "<|eot_id|>",
2064
+ "model_input_names": [
2065
+ "input_ids",
2066
+ "attention_mask"
2067
+ ],
2068
+ "model_max_length": 131072,
2069
+ "pad_token": "<|finetune_right_pad_id|>",
2070
+ "tokenizer_class": "PreTrainedTokenizerFast"
2071
+ }