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Papers/Trans4Trans: Efficient Transformer for Transparent Object ...

Trans4Trans: Efficient Transformer for Transparent Object Segmentation to Help Visually Impaired People Navigate in the Real World

Jiaming Zhang, Kailun Yang, Angela Constantinescu, Kunyu Peng, Karin Müller, Rainer Stiefelhagen

2021-07-07NavigateSemantic SegmentationTransparent objects
PaperPDFCode(official)

Abstract

Common fully glazed facades and transparent objects present architectural barriers and impede the mobility of people with low vision or blindness, for instance, a path detected behind a glass door is inaccessible unless it is correctly perceived and reacted. However, segmenting these safety-critical objects is rarely covered by conventional assistive technologies. To tackle this issue, we construct a wearable system with a novel dual-head Transformer for Transparency (Trans4Trans) model, which is capable of segmenting general and transparent objects and performing real-time wayfinding to assist people walking alone more safely. Especially, both decoders created by our proposed Transformer Parsing Module (TPM) enable effective joint learning from different datasets. Besides, the efficient Trans4Trans model composed of symmetric transformer-based encoder and decoder, requires little computational expenses and is readily deployed on portable GPUs. Our Trans4Trans model outperforms state-of-the-art methods on the test sets of Stanford2D3D and Trans10K-v2 datasets and obtains mIoU of 45.13% and 75.14%, respectively. Through various pre-tests and a user study conducted in indoor and outdoor scenarios, the usability and reliability of our assistive system have been extensively verified.

Results

TaskDatasetMetricValueModel
Semantic SegmentationEventScapemIoU51.86Trans4Trans
Semantic SegmentationTrans10KGFLOPs34.38Trans4Trans (M)
Semantic SegmentationTrans10KGFLOPs19.92Trans4Trans (S)
Semantic SegmentationTrans10KGFLOPs10.45Trans4Trans (T)
10-shot image generationEventScapemIoU51.86Trans4Trans
10-shot image generationTrans10KGFLOPs34.38Trans4Trans (M)
10-shot image generationTrans10KGFLOPs19.92Trans4Trans (S)
10-shot image generationTrans10KGFLOPs10.45Trans4Trans (T)

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