Datasets:
fabiencasenave
commited on
Commit
•
8fa2405
1
Parent(s):
797b712
Upload README.md with huggingface_hub
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README.md
CHANGED
@@ -1,5 +1,1260 @@
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dataset_info:
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3 |
features:
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- name: sample
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dtype: binary
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@@ -9,9 +1264,72 @@ dataset_info:
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num_examples: 4
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download_size: 1705231
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dataset_size: 3571624
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configs:
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- config_name: default
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data_files:
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- split: all_samples
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path: data/all_samples-*
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---
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1 |
---
|
2 |
+
license: cc-by-sa-4.0
|
3 |
+
size_categories:
|
4 |
+
- n<1K
|
5 |
+
task_categories:
|
6 |
+
- graph-ml
|
7 |
+
pretty_name: 2D quasistatic non-linear structural mechanics solutions
|
8 |
+
tags:
|
9 |
+
- physics learning
|
10 |
+
- geometry learning
|
11 |
+
configs:
|
12 |
+
- config_name: default
|
13 |
+
data_files:
|
14 |
+
- split: all_samples
|
15 |
+
path: data/all_samples-*
|
16 |
dataset_info:
|
17 |
+
description:
|
18 |
+
legal:
|
19 |
+
owner: Safran
|
20 |
+
license: cc-by-sa-4.0
|
21 |
+
data_production:
|
22 |
+
type: simulation
|
23 |
+
physics: 2D quasistatic non-linear structural mechanics, small deformations,
|
24 |
+
plane strain
|
25 |
+
split:
|
26 |
+
test:
|
27 |
+
- 500
|
28 |
+
- 501
|
29 |
+
- 502
|
30 |
+
- 503
|
31 |
+
- 504
|
32 |
+
- 505
|
33 |
+
- 506
|
34 |
+
- 507
|
35 |
+
- 508
|
36 |
+
- 509
|
37 |
+
- 510
|
38 |
+
- 511
|
39 |
+
- 512
|
40 |
+
- 513
|
41 |
+
- 514
|
42 |
+
- 515
|
43 |
+
- 516
|
44 |
+
- 517
|
45 |
+
- 518
|
46 |
+
- 519
|
47 |
+
- 520
|
48 |
+
- 521
|
49 |
+
- 522
|
50 |
+
- 523
|
51 |
+
- 524
|
52 |
+
- 525
|
53 |
+
- 526
|
54 |
+
- 527
|
55 |
+
- 528
|
56 |
+
- 529
|
57 |
+
- 530
|
58 |
+
- 531
|
59 |
+
- 532
|
60 |
+
- 533
|
61 |
+
- 534
|
62 |
+
- 535
|
63 |
+
- 536
|
64 |
+
- 537
|
65 |
+
- 538
|
66 |
+
- 539
|
67 |
+
- 540
|
68 |
+
- 541
|
69 |
+
- 542
|
70 |
+
- 543
|
71 |
+
- 544
|
72 |
+
- 545
|
73 |
+
- 546
|
74 |
+
- 547
|
75 |
+
- 548
|
76 |
+
- 549
|
77 |
+
- 550
|
78 |
+
- 551
|
79 |
+
- 552
|
80 |
+
- 553
|
81 |
+
- 554
|
82 |
+
- 555
|
83 |
+
- 556
|
84 |
+
- 557
|
85 |
+
- 558
|
86 |
+
- 559
|
87 |
+
- 560
|
88 |
+
- 561
|
89 |
+
- 562
|
90 |
+
- 563
|
91 |
+
- 564
|
92 |
+
- 565
|
93 |
+
- 566
|
94 |
+
- 567
|
95 |
+
- 568
|
96 |
+
- 569
|
97 |
+
- 570
|
98 |
+
- 571
|
99 |
+
- 572
|
100 |
+
- 573
|
101 |
+
- 574
|
102 |
+
- 575
|
103 |
+
- 576
|
104 |
+
- 577
|
105 |
+
- 578
|
106 |
+
- 579
|
107 |
+
- 580
|
108 |
+
- 581
|
109 |
+
- 582
|
110 |
+
- 583
|
111 |
+
- 584
|
112 |
+
- 585
|
113 |
+
- 586
|
114 |
+
- 587
|
115 |
+
- 588
|
116 |
+
- 589
|
117 |
+
- 590
|
118 |
+
- 591
|
119 |
+
- 592
|
120 |
+
- 593
|
121 |
+
- 594
|
122 |
+
- 595
|
123 |
+
- 596
|
124 |
+
- 597
|
125 |
+
- 598
|
126 |
+
- 599
|
127 |
+
- 600
|
128 |
+
- 601
|
129 |
+
- 602
|
130 |
+
- 603
|
131 |
+
- 604
|
132 |
+
- 605
|
133 |
+
- 606
|
134 |
+
- 607
|
135 |
+
- 608
|
136 |
+
- 609
|
137 |
+
- 610
|
138 |
+
- 611
|
139 |
+
- 612
|
140 |
+
- 613
|
141 |
+
- 614
|
142 |
+
- 615
|
143 |
+
- 616
|
144 |
+
- 617
|
145 |
+
- 618
|
146 |
+
- 619
|
147 |
+
- 620
|
148 |
+
- 621
|
149 |
+
- 622
|
150 |
+
- 623
|
151 |
+
- 624
|
152 |
+
- 625
|
153 |
+
- 626
|
154 |
+
- 627
|
155 |
+
- 628
|
156 |
+
- 629
|
157 |
+
- 630
|
158 |
+
- 631
|
159 |
+
- 632
|
160 |
+
- 633
|
161 |
+
- 634
|
162 |
+
- 635
|
163 |
+
- 636
|
164 |
+
- 637
|
165 |
+
- 638
|
166 |
+
- 639
|
167 |
+
- 640
|
168 |
+
- 641
|
169 |
+
- 642
|
170 |
+
- 643
|
171 |
+
- 644
|
172 |
+
- 645
|
173 |
+
- 646
|
174 |
+
- 647
|
175 |
+
- 648
|
176 |
+
- 649
|
177 |
+
- 650
|
178 |
+
- 651
|
179 |
+
- 652
|
180 |
+
- 653
|
181 |
+
- 654
|
182 |
+
- 655
|
183 |
+
- 656
|
184 |
+
- 657
|
185 |
+
- 658
|
186 |
+
- 659
|
187 |
+
- 660
|
188 |
+
- 661
|
189 |
+
- 662
|
190 |
+
- 663
|
191 |
+
- 664
|
192 |
+
- 665
|
193 |
+
- 666
|
194 |
+
- 667
|
195 |
+
- 668
|
196 |
+
- 669
|
197 |
+
- 670
|
198 |
+
- 671
|
199 |
+
- 672
|
200 |
+
- 673
|
201 |
+
- 674
|
202 |
+
- 675
|
203 |
+
- 676
|
204 |
+
- 677
|
205 |
+
- 678
|
206 |
+
- 679
|
207 |
+
- 680
|
208 |
+
- 681
|
209 |
+
- 682
|
210 |
+
- 683
|
211 |
+
- 684
|
212 |
+
- 685
|
213 |
+
- 686
|
214 |
+
- 687
|
215 |
+
- 688
|
216 |
+
- 689
|
217 |
+
- 690
|
218 |
+
- 691
|
219 |
+
- 692
|
220 |
+
- 693
|
221 |
+
- 694
|
222 |
+
- 695
|
223 |
+
- 696
|
224 |
+
- 697
|
225 |
+
- 698
|
226 |
+
- 699
|
227 |
+
OOD:
|
228 |
+
- 700
|
229 |
+
- 701
|
230 |
+
train_8:
|
231 |
+
- 35
|
232 |
+
- 95
|
233 |
+
- 188
|
234 |
+
- 210
|
235 |
+
- 312
|
236 |
+
- 322
|
237 |
+
- 401
|
238 |
+
- 408
|
239 |
+
train_16:
|
240 |
+
- 17
|
241 |
+
- 35
|
242 |
+
- 64
|
243 |
+
- 95
|
244 |
+
- 170
|
245 |
+
- 174
|
246 |
+
- 184
|
247 |
+
- 188
|
248 |
+
- 210
|
249 |
+
- 267
|
250 |
+
- 290
|
251 |
+
- 312
|
252 |
+
- 322
|
253 |
+
- 401
|
254 |
+
- 408
|
255 |
+
- 496
|
256 |
+
train_32:
|
257 |
+
- 12
|
258 |
+
- 17
|
259 |
+
- 19
|
260 |
+
- 35
|
261 |
+
- 64
|
262 |
+
- 92
|
263 |
+
- 95
|
264 |
+
- 99
|
265 |
+
- 144
|
266 |
+
- 148
|
267 |
+
- 159
|
268 |
+
- 170
|
269 |
+
- 171
|
270 |
+
- 174
|
271 |
+
- 184
|
272 |
+
- 188
|
273 |
+
- 206
|
274 |
+
- 210
|
275 |
+
- 267
|
276 |
+
- 290
|
277 |
+
- 312
|
278 |
+
- 322
|
279 |
+
- 364
|
280 |
+
- 371
|
281 |
+
- 395
|
282 |
+
- 400
|
283 |
+
- 401
|
284 |
+
- 403
|
285 |
+
- 408
|
286 |
+
- 436
|
287 |
+
- 481
|
288 |
+
- 496
|
289 |
+
train_64:
|
290 |
+
- 4
|
291 |
+
- 12
|
292 |
+
- 17
|
293 |
+
- 19
|
294 |
+
- 22
|
295 |
+
- 24
|
296 |
+
- 35
|
297 |
+
- 40
|
298 |
+
- 53
|
299 |
+
- 64
|
300 |
+
- 78
|
301 |
+
- 86
|
302 |
+
- 92
|
303 |
+
- 95
|
304 |
+
- 99
|
305 |
+
- 109
|
306 |
+
- 114
|
307 |
+
- 138
|
308 |
+
- 144
|
309 |
+
- 148
|
310 |
+
- 156
|
311 |
+
- 157
|
312 |
+
- 159
|
313 |
+
- 168
|
314 |
+
- 170
|
315 |
+
- 171
|
316 |
+
- 172
|
317 |
+
- 174
|
318 |
+
- 179
|
319 |
+
- 184
|
320 |
+
- 188
|
321 |
+
- 195
|
322 |
+
- 206
|
323 |
+
- 207
|
324 |
+
- 210
|
325 |
+
- 226
|
326 |
+
- 233
|
327 |
+
- 256
|
328 |
+
- 267
|
329 |
+
- 279
|
330 |
+
- 287
|
331 |
+
- 290
|
332 |
+
- 299
|
333 |
+
- 302
|
334 |
+
- 312
|
335 |
+
- 322
|
336 |
+
- 327
|
337 |
+
- 343
|
338 |
+
- 351
|
339 |
+
- 364
|
340 |
+
- 371
|
341 |
+
- 395
|
342 |
+
- 400
|
343 |
+
- 401
|
344 |
+
- 403
|
345 |
+
- 405
|
346 |
+
- 408
|
347 |
+
- 409
|
348 |
+
- 436
|
349 |
+
- 446
|
350 |
+
- 465
|
351 |
+
- 469
|
352 |
+
- 481
|
353 |
+
- 496
|
354 |
+
train_125:
|
355 |
+
- 0
|
356 |
+
- 4
|
357 |
+
- 8
|
358 |
+
- 12
|
359 |
+
- 16
|
360 |
+
- 17
|
361 |
+
- 19
|
362 |
+
- 22
|
363 |
+
- 24
|
364 |
+
- 33
|
365 |
+
- 34
|
366 |
+
- 35
|
367 |
+
- 36
|
368 |
+
- 37
|
369 |
+
- 39
|
370 |
+
- 40
|
371 |
+
- 46
|
372 |
+
- 49
|
373 |
+
- 51
|
374 |
+
- 53
|
375 |
+
- 63
|
376 |
+
- 64
|
377 |
+
- 74
|
378 |
+
- 78
|
379 |
+
- 86
|
380 |
+
- 89
|
381 |
+
- 92
|
382 |
+
- 94
|
383 |
+
- 95
|
384 |
+
- 99
|
385 |
+
- 100
|
386 |
+
- 109
|
387 |
+
- 114
|
388 |
+
- 138
|
389 |
+
- 139
|
390 |
+
- 144
|
391 |
+
- 148
|
392 |
+
- 151
|
393 |
+
- 156
|
394 |
+
- 157
|
395 |
+
- 159
|
396 |
+
- 163
|
397 |
+
- 168
|
398 |
+
- 170
|
399 |
+
- 171
|
400 |
+
- 172
|
401 |
+
- 174
|
402 |
+
- 179
|
403 |
+
- 183
|
404 |
+
- 184
|
405 |
+
- 188
|
406 |
+
- 189
|
407 |
+
- 195
|
408 |
+
- 201
|
409 |
+
- 206
|
410 |
+
- 207
|
411 |
+
- 210
|
412 |
+
- 212
|
413 |
+
- 216
|
414 |
+
- 220
|
415 |
+
- 225
|
416 |
+
- 226
|
417 |
+
- 228
|
418 |
+
- 230
|
419 |
+
- 233
|
420 |
+
- 241
|
421 |
+
- 255
|
422 |
+
- 256
|
423 |
+
- 262
|
424 |
+
- 267
|
425 |
+
- 268
|
426 |
+
- 275
|
427 |
+
- 277
|
428 |
+
- 279
|
429 |
+
- 287
|
430 |
+
- 289
|
431 |
+
- 290
|
432 |
+
- 296
|
433 |
+
- 299
|
434 |
+
- 300
|
435 |
+
- 301
|
436 |
+
- 302
|
437 |
+
- 311
|
438 |
+
- 312
|
439 |
+
- 314
|
440 |
+
- 318
|
441 |
+
- 322
|
442 |
+
- 327
|
443 |
+
- 329
|
444 |
+
- 341
|
445 |
+
- 343
|
446 |
+
- 347
|
447 |
+
- 348
|
448 |
+
- 351
|
449 |
+
- 364
|
450 |
+
- 371
|
451 |
+
- 379
|
452 |
+
- 385
|
453 |
+
- 387
|
454 |
+
- 390
|
455 |
+
- 392
|
456 |
+
- 394
|
457 |
+
- 395
|
458 |
+
- 400
|
459 |
+
- 401
|
460 |
+
- 403
|
461 |
+
- 405
|
462 |
+
- 407
|
463 |
+
- 408
|
464 |
+
- 409
|
465 |
+
- 421
|
466 |
+
- 422
|
467 |
+
- 431
|
468 |
+
- 436
|
469 |
+
- 440
|
470 |
+
- 444
|
471 |
+
- 446
|
472 |
+
- 456
|
473 |
+
- 465
|
474 |
+
- 466
|
475 |
+
- 469
|
476 |
+
- 470
|
477 |
+
- 471
|
478 |
+
- 481
|
479 |
+
- 496
|
480 |
+
train_250:
|
481 |
+
- 0
|
482 |
+
- 4
|
483 |
+
- 5
|
484 |
+
- 8
|
485 |
+
- 9
|
486 |
+
- 11
|
487 |
+
- 12
|
488 |
+
- 16
|
489 |
+
- 17
|
490 |
+
- 19
|
491 |
+
- 21
|
492 |
+
- 22
|
493 |
+
- 24
|
494 |
+
- 32
|
495 |
+
- 33
|
496 |
+
- 34
|
497 |
+
- 35
|
498 |
+
- 36
|
499 |
+
- 37
|
500 |
+
- 39
|
501 |
+
- 40
|
502 |
+
- 41
|
503 |
+
- 42
|
504 |
+
- 45
|
505 |
+
- 46
|
506 |
+
- 47
|
507 |
+
- 49
|
508 |
+
- 51
|
509 |
+
- 53
|
510 |
+
- 58
|
511 |
+
- 59
|
512 |
+
- 63
|
513 |
+
- 64
|
514 |
+
- 67
|
515 |
+
- 68
|
516 |
+
- 74
|
517 |
+
- 76
|
518 |
+
- 78
|
519 |
+
- 81
|
520 |
+
- 83
|
521 |
+
- 86
|
522 |
+
- 87
|
523 |
+
- 88
|
524 |
+
- 89
|
525 |
+
- 90
|
526 |
+
- 92
|
527 |
+
- 94
|
528 |
+
- 95
|
529 |
+
- 96
|
530 |
+
- 99
|
531 |
+
- 100
|
532 |
+
- 101
|
533 |
+
- 103
|
534 |
+
- 105
|
535 |
+
- 106
|
536 |
+
- 109
|
537 |
+
- 110
|
538 |
+
- 111
|
539 |
+
- 112
|
540 |
+
- 114
|
541 |
+
- 116
|
542 |
+
- 122
|
543 |
+
- 125
|
544 |
+
- 126
|
545 |
+
- 127
|
546 |
+
- 128
|
547 |
+
- 130
|
548 |
+
- 131
|
549 |
+
- 136
|
550 |
+
- 137
|
551 |
+
- 138
|
552 |
+
- 139
|
553 |
+
- 144
|
554 |
+
- 146
|
555 |
+
- 147
|
556 |
+
- 148
|
557 |
+
- 151
|
558 |
+
- 152
|
559 |
+
- 156
|
560 |
+
- 157
|
561 |
+
- 159
|
562 |
+
- 162
|
563 |
+
- 163
|
564 |
+
- 166
|
565 |
+
- 168
|
566 |
+
- 170
|
567 |
+
- 171
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task: regression
|
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+
in_scalars_names:
|
1234 |
+
- P
|
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+
- p1
|
1236 |
+
- p2
|
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+
- p3
|
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+
- p4
|
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+
- p5
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+
out_scalars_names:
|
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+
- max_von_mises
|
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+
- max_q
|
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+
- max_U2_top
|
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+
- max_sig22_top
|
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+
in_timeseries_names: []
|
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out_timeseries_names: []
|
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+
in_fields_names: []
|
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+
out_fields_names:
|
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+
- U1
|
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+
- U2
|
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+
- q
|
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+
- sig11
|
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+
- sig22
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+
- sig12
|
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+
in_meshes_names:
|
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+
- /Base_2_2/Zone
|
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+
out_meshes_names: []
|
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features:
|
1259 |
- name: sample
|
1260 |
dtype: binary
|
|
|
1264 |
num_examples: 4
|
1265 |
download_size: 1705231
|
1266 |
dataset_size: 3571624
|
|
|
|
|
|
|
|
|
|
|
1267 |
---
|
1268 |
+
|
1269 |
+
# Dataset Card
|
1270 |
+
![image/png](https://i.ibb.co/Js062hF/preview.png)
|
1271 |
+
|
1272 |
+
This dataset contains a single huggingface split, named 'all_samples'.
|
1273 |
+
|
1274 |
+
The samples contains a single huggingface feature, named called "sample".
|
1275 |
+
|
1276 |
+
Samples are instances of [plaid.containers.sample.Sample](https://plaid-lib.readthedocs.io/en/latest/autoapi/plaid/containers/sample/index.html#plaid.containers.sample.Sample).
|
1277 |
+
Mesh objects included in samples follow the [CGNS](https://cgns.github.io/) standard, and can be converted in
|
1278 |
+
[Muscat.Containers.Mesh.Mesh](https://muscat.readthedocs.io/en/latest/_source/Muscat.Containers.Mesh.html#Muscat.Containers.Mesh.Mesh).
|
1279 |
+
|
1280 |
+
|
1281 |
+
Example of commands:
|
1282 |
+
```python
|
1283 |
+
import pickle
|
1284 |
+
from datasets import load_dataset
|
1285 |
+
from plaid.containers.sample import Sample
|
1286 |
+
|
1287 |
+
# Load the dataset
|
1288 |
+
dataset = load_dataset("chanel/dataset", split="all_samples")
|
1289 |
+
|
1290 |
+
# Get the first sample of the first split
|
1291 |
+
split_names = list(dataset.description["split"].keys())
|
1292 |
+
ids_split_0 = dataset.description["split"][split_names[0]]
|
1293 |
+
sample_0_split_0 = dataset[ids_split_0[0]]["sample"]
|
1294 |
+
plaid_sample = Sample.model_validate(pickle.loads(sample_0_split_0))
|
1295 |
+
print("type(plaid_sample) =", type(plaid_sample))
|
1296 |
+
|
1297 |
+
print("plaid_sample =", plaid_sample)
|
1298 |
+
|
1299 |
+
# Get a field from the sample
|
1300 |
+
field_names = plaid_sample.get_field_names()
|
1301 |
+
field = plaid_sample.get_field(field_names[0])
|
1302 |
+
print("field_names[0] =", field_names[0])
|
1303 |
+
|
1304 |
+
print("field.shape =", field.shape)
|
1305 |
+
|
1306 |
+
# Get the mesh and convert it to Muscat
|
1307 |
+
from Muscat.Bridges import CGNSBridge
|
1308 |
+
CGNS_tree = plaid_sample.get_mesh()
|
1309 |
+
mesh = CGNSBridge.CGNSToMesh(CGNS_tree)
|
1310 |
+
print(mesh)
|
1311 |
+
```
|
1312 |
+
|
1313 |
+
## Dataset Details
|
1314 |
+
|
1315 |
+
### Dataset Description
|
1316 |
+
|
1317 |
+
|
1318 |
+
This dataset contains 2D quasistatic non-linear structural mechanics solutions, under geometrical variations.
|
1319 |
+
|
1320 |
+
A description is provided in the [MMGP paper ](https://arxiv.org/pdf/2305.12871) Sections 4.1 and A.2.
|
1321 |
+
|
1322 |
+
The variablity in the samples are 6 input scalars and the geometry (mesh). Outputs of interest are 4 scalars and 6 fields.
|
1323 |
+
|
1324 |
+
Seven nested training sets of sizes 8 to 500 are provided, with complete input-output data. A testing set of size 200, as well as two out-of-distribution samples, are provided, for which outputs are not provided.
|
1325 |
+
|
1326 |
+
Dataset created using the [PLAID](https://plaid-lib.readthedocs.io/) library and datamodel.
|
1327 |
+
|
1328 |
+
- **Language:** [PLAID](https://plaid-lib.readthedocs.io/)
|
1329 |
+
- **License:** cc-by-sa-4.0
|
1330 |
+
- **Owner:** Safran
|
1331 |
+
|
1332 |
+
### Dataset Sources
|
1333 |
+
|
1334 |
+
- **Repository:** [Zenodo](https://zenodo.org/records/10124594)
|
1335 |
+
- **Paper:** [arxiv](https://arxiv.org/pdf/2305.12871)
|