Papers › When Counting Meets HMER: Counting-Aware Network for Handwritten Mathematical...

When Counting Meets HMER: Counting-Aware Network for Handwritten Mathematical Expression Recognition

23 Jul 2022arXiv:2207.11463archive 2025-07-28

Bohan Li, Ye Yuan, Dingkang Liang, Xiao Liu, Zhilong Ji, Jinfeng Bai, Wenyu Liu, Xiang Bai

Recently, most handwritten mathematical expression recognition (HMER) methods adopt the encoder-decoder networks, which directly predict the markup sequences from formula images with the attention mechanism. However, such methods may fail to accurately read formulas with complicated structure or generate long markup sequences, as the attention results are often inaccurate due to the large variance of writing styles or spatial layouts. To alleviate this problem, we propose an unconventional network for HMER named Counting-Aware Network (CAN), which jointly optimizes two tasks: HMER and symbol counting. Specifically, we design a weakly-supervised counting module that can predict the number of each symbol class without the symbol-level position annotations, and then plug it into a typical attention-based encoder-decoder model for HMER. Experiments on the benchmark datasets for HMER validate that both joint optimization and counting results are beneficial for correcting the prediction errors of encoder-decoder models, and CAN consistently outperforms the state-of-the-art methods. In particular, compared with an encoder-decoder model for HMER, the extra time cost caused by the proposed counting module is marginal. The source code is available at https://github.com/LBH1024/CAN.

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cal_score LBH1024/CAN/utils.py official repository unverified MIT (permissive) · 02d543693c5cbc61 · report
collate_fn LBH1024/CAN/dataset.py official repository unverified MIT (permissive) · 9de8449fe1430ac2 · report
gen_counting_label LBH1024/CAN/counting_utils.py official repository unverified MIT (permissive) · d60c6502d12a92c0 · report
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save_checkpoint LBH1024/CAN/utils.py official repository unverified MIT (permissive) · beb2b433b3cefd2f · report

Tasks

DecoderHandwritten Mathmatical Expression RecognitionOptical Character Recognition (OCR)

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Handwritten Mathmatical Expression Recognition CROHME 2014 CAN-ABM ExpRate 57.26 #8 of 17 Archive leaderboard report
Handwritten Mathmatical Expression Recognition CROHME 2014 CAN-DWAP ExpRate 57.00 #9 of 17 Archive leaderboard report
Handwritten Mathmatical Expression Recognition CROHME 2016 CAN-ABM ExpRate 56.15 #7 of 16 Archive leaderboard report
Handwritten Mathmatical Expression Recognition CROHME 2016 CAN-DWAP ExpRate 56.06 #8 of 16 Archive leaderboard report
Handwritten Mathmatical Expression Recognition CROHME 2019 CAN-ABM ExpRate 55.96 #8 of 14 Archive leaderboard report
Handwritten Mathmatical Expression Recognition CROHME 2019 CAN-DWAP ExpRate 54.88 #9 of 14 Archive leaderboard report
Handwritten Mathmatical Expression Recognition HME100K CAN-ABM ExpRate 68.09 #6 of 12 Archive leaderboard report
Handwritten Mathmatical Expression Recognition HME100K CAN-DWAP ExpRate 67.31 #7 of 12 Archive leaderboard report

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