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A Lightweight Road Scene Semantic Segmentation Algorithm
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作者 Jiansheng Peng Qing Yang yaru hou 《Computers, Materials & Continua》 SCIE EI 2023年第11期1929-1948,共20页
In recent years,with the continuous deepening of smart city construction,there have been significant changes and improvements in the field of intelligent transportation.The semantic segmentation of road scenes has imp... In recent years,with the continuous deepening of smart city construction,there have been significant changes and improvements in the field of intelligent transportation.The semantic segmentation of road scenes has important practical significance in the fields of automatic driving,transportation planning,and intelligent transportation systems.However,the current mainstream lightweight semantic segmentation models in road scene segmentation face problems such as poor segmentation performance of small targets and insufficient refinement of segmentation edges.Therefore,this article proposes a lightweight semantic segmentation model based on the LiteSeg model improvement to address these issues.The model uses the lightweight backbone network MobileNet instead of the LiteSeg backbone network to reduce the network parameters and computation,and combines the Coordinate Attention(CA)mechanism to help the network capture long-distance dependencies.At the same time,by combining the dependencies of spatial information and channel information,the Spatial and Channel Network(SCNet)attention mechanism is proposed to improve the feature extraction ability of the model.Finally,a multiscale transposed attention encoding(MTAE)module was proposed to obtain features of different resolutions and perform feature fusion.In this paper,the proposed model is verified on the Cityscapes dataset.The experimental results show that the addition of SCNet and MTAE modules increases the mean Intersection over Union(mIoU)of the original LiteSeg model by 4.69%.On this basis,the backbone network is replaced with MobileNet,and the CA model is added at the same time.At the cost of increasing the minimum model parameters and computing costs,the mIoU of the original LiteSeg model is increased by 2.46%.This article also compares the proposed model with some current lightweight semantic segmentation models,and experiments show that the comprehensive performance of the proposed model is the best,especially in achieving excellent results in small object segmentation.Finally,this article will conduct generalization testing on the KITTI dataset for the proposed model,and the experimental results show that the proposed algorithm has a certain degree of generalization. 展开更多
关键词 Semantic segmentation LIGHTWEIGHT road scenes multi-scale transposition attention encoding(MTAE)
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引入非天然氨基酸胶原蛋白表达及交联成键的优化 被引量:2
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作者 侯亚茹 张萌 许菲 《生物工程学报》 CAS CSCD 北大核心 2021年第9期3231-3241,共11页
微生物重组表达胶原蛋白来源清洁,同时具有序列设计灵活和高产量高纯度等优点,作为生物材料在组织工程等领域具有广泛的应用前景。然而如何促进重组胶原分子交联,使其形成更加稳定的空间结构是设计重组胶原纳米材料需要克服的难点。文... 微生物重组表达胶原蛋白来源清洁,同时具有序列设计灵活和高产量高纯度等优点,作为生物材料在组织工程等领域具有广泛的应用前景。然而如何促进重组胶原分子交联,使其形成更加稳定的空间结构是设计重组胶原纳米材料需要克服的难点。文中通过双质粒系统将非天然氨基酸O-(2-溴乙基)-酪氨酸引入细菌胶原蛋白序列中,并对其发酵条件进行优化,结果表明在25℃下,以终浓度为0.5mmol/L的IPTG和0.06%的阿拉伯糖诱导24h可以获得高纯度含非天然氨基酸的胶原蛋白。将含非天然氨基酸的胶原蛋白与含半胱氨酸的胶原蛋白在pH为9.0的NH4HCO3缓冲液中进行交联,形成了最大分子粒径可达1μm的聚集体,为重组胶原蛋白生物材料的设计提供了新思路。 展开更多
关键词 重组胶原蛋白 非天然氨基酸 表达优化 硫醚键交联
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