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184
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6 classes
0AI2D
0AI2D
0AI2D
1AI2D_abc
1AI2D_abc
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1AI2D_abc
2ChartQA
2ChartQA
2ChartQA
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2ChartQA
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2ChartQA
2ChartQA
3DocVQA
3DocVQA
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3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
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3DocVQA
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3DocVQA
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3DocVQA
3DocVQA
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3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
3DocVQA
4GQA
4GQA
4GQA
4GQA
4GQA
4GQA
4GQA
4GQA
4GQA
4GQA
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Check out the documentation for more information.

E2 Benchmark

An efficiency benchmark of 180 VQA cases in two sweeps. Each sweep varies one workload dimension while holding the others fixed, so latency can be measured against that axis. Token counts use LLaVA-1.5's tokenizer and prompt format. Images are unmodified, so visual tokens are constant only for fixed-resolution models.

category varied axis (level) levels cases held fixed
input_text_tokens prompt tokens 16 (57 to 74) 80 answer 1 to 11 tokens
reference_answer_tokens gold answer tokens 20 (1 to 21) 100 prompt 59 to 63 tokens

Each level has 5 distinct cases.

Sources

dataset split cases
AI2D test 8
ChartQA test (human) 37
DocVQA val 65
GQA testdev balanced 23
TextVQA val 47

AI2D questions that refer to diagram letters use the ABC-labelled version of the diagram (images/AI2D_abc/). AI2D answers are given as option text, not letters.

Layout

varest_benchmark.json    # all cases
images/<dataset>/    # source images

Fields

  • question_id: unique case id
  • image: image path, relative to this folder
  • text: question
  • answer, answers: primary gold answer, all gold answers
  • category, level: sweep and its value for this case
  • evaluator: scoring method (ANLS for DocVQA, relaxed accuracy for ChartQA, VQA soft accuracy for TextVQA, exact match for GQA, option match for AI2D)
  • source: original dataset, split, question id and file paths within the original dataset release
  • workload: visual, prompt and answer token counts, and image size
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