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323 results on '"Xu, Chunjing"'

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1. BLOS-BEV: Navigation Map Enhanced Lane Segmentation Network, Beyond Line of Sight

2. Open-sourced Data Ecosystem in Autonomous Driving: the Present and Future

3. FlowMap: Path Generation for Automated Vehicles in Open Space Using Traffic Flow

4. Graph-based Topology Reasoning for Driving Scenes

5. Visual Exemplar Driven Task-Prompting for Unified Perception in Autonomous Driving

6. NLIP: Noise-robust Language-Image Pre-training

7. Fine-grained Visual-Text Prompt-Driven Self-Training for Open-Vocabulary Object Detection

8. DetCLIP: Dictionary-Enriched Visual-Concept Paralleled Pre-training for Open-world Detection

9. Effective Adaptation in Multi-Task Co-Training for Unified Autonomous Driving

10. Open-world Semantic Segmentation via Contrasting and Clustering Vision-Language Embedding

11. Task-Customized Self-Supervised Pre-training with Scalable Dynamic Routing

12. ManiTrans: Entity-Level Text-Guided Image Manipulation via Token-wise Semantic Alignment and Generation

13. Laneformer: Object-aware Row-Column Transformers for Lane Detection

14. CODA: A Real-World Road Corner Case Dataset for Object Detection in Autonomous Driving

15. Wukong: A 100 Million Large-scale Chinese Cross-modal Pre-training Benchmark

16. GhostNets on Heterogeneous Devices via Cheap Operations

17. An Empirical Study of Adder Neural Networks for Object Detection

18. FILIP: Fine-grained Interactive Language-Image Pre-Training

19. SOFT: Softmax-free Transformer with Linear Complexity

20. Learning Versatile Convolution Filters for Efficient Visual Recognition

21. Pyramid R-CNN: Towards Better Performance and Adaptability for 3D Object Detection

22. Voxel Transformer for 3D Object Detection

23. Greedy Network Enlarging

24. $S^3$: Sign-Sparse-Shift Reparametrization for Effective Training of Low-bit Shift Networks

26. One Million Scenes for Autonomous Driving: ONCE Dataset

27. SODA10M: A Large-Scale 2D Self/Semi-Supervised Object Detection Dataset for Autonomous Driving

28. Universal Adder Neural Networks

29. Winograd Algorithm for AdderNet

30. Distilling Object Detectors via Decoupled Features

31. Learning Frequency-aware Dynamic Network for Efficient Super-Resolution

32. Learning Frequency Domain Approximation for Binary Neural Networks

33. Transformer in Transformer

34. AdderNet and its Minimalist Hardware Design for Energy-Efficient Artificial Intelligence

35. A Survey on Visual Transformer

36. Pre-Trained Image Processing Transformer

37. VEGA: Towards an End-to-End Configurable AutoML Pipeline

38. Model Rubik's Cube: Twisting Resolution, Depth and Width for TinyNets

39. SCOP: Scientific Control for Reliable Neural Network Pruning

40. Training Binary Neural Networks through Learning with Noisy Supervision

41. Kernel Based Progressive Distillation for Adder Neural Networks

42. AdderSR: Towards Energy Efficient Image Super-Resolution

43. Searching for Low-Bit Weights in Quantized Neural Networks

44. Video Super-resolution with Temporal Group Attention

45. Optical Flow Distillation: Towards Efficient and Stable Video Style Transfer

46. HourNAS: Extremely Fast Neural Architecture Search Through an Hourglass Lens

47. A Semi-Supervised Assessor of Neural Architectures

48. Distilling portable Generative Adversarial Networks for Image Translation

49. Beyond Dropout: Feature Map Distortion to Regularize Deep Neural Networks

50. Discernible Image Compression

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