提交 f2c986d6 编写于 作者: 文幕地方's avatar 文幕地方

update metric

上级 3d3d0d31
...@@ -33,8 +33,8 @@ We evaluated the algorithm on the PubTabNet<sup>[1]</sup> eval dataset, and the ...@@ -33,8 +33,8 @@ We evaluated the algorithm on the PubTabNet<sup>[1]</sup> eval dataset, and the
|Method|Acc|[TEDS(Tree-Edit-Distance-based Similarity)](https://github.com/ibm-aur-nlp/PubTabNet/tree/master/src)|Speed| |Method|Acc|[TEDS(Tree-Edit-Distance-based Similarity)](https://github.com/ibm-aur-nlp/PubTabNet/tree/master/src)|Speed|
| --- | --- | --- | ---| | --- | --- | --- | ---|
| EDD<sup>[2]</sup> |x| 88.3 |x| | EDD<sup>[2]</sup> |x| 88.3 |x|
| TableRec-RARE(ours) |73.8%| 93.32 |1550ms| | TableRec-RARE(ours) |73.8%| 95.3% |1550ms|
| SLANet(ours) | 76.2%| 94.98 |766ms| | SLANet(ours) | 76.2%| 95.85% |766ms|
The performance indicators are explained as follows: The performance indicators are explained as follows:
- Acc: The accuracy of the table structure in each image, a wrong token is considered an error. - Acc: The accuracy of the table structure in each image, a wrong token is considered an error.
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...@@ -38,9 +38,9 @@ ...@@ -38,9 +38,9 @@
|算法|Acc|[TEDS(Tree-Edit-Distance-based Similarity)](https://github.com/ibm-aur-nlp/PubTabNet/tree/master/src)|Speed| |算法|Acc|[TEDS(Tree-Edit-Distance-based Similarity)](https://github.com/ibm-aur-nlp/PubTabNet/tree/master/src)|Speed|
| --- | --- | --- | ---| | --- | --- | --- | ---|
| EDD<sup>[2]</sup> |x| 88.3 |x| | EDD<sup>[2]</sup> |x| 88.3% |x|
| TableRec-RARE(ours) |73.8%| 93.32 |1550ms| | TableRec-RARE(ours) |73.8%| 95.3% |1550ms|
| SLANet(ours) | 76.2%| 94.98 |766ms| | SLANet(ours) | 76.2%| 95.85% |766ms|
性能指标解释如下: 性能指标解释如下:
- Acc: 模型对每张图像里表格结构的识别准确率,错一个token就算错误。 - Acc: 模型对每张图像里表格结构的识别准确率,错一个token就算错误。
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