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64 results on '"FORGERY"'

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1. Tamper image detection using error level analysis and convolutional neural networks.

2. CNN-based Approach for Robust Detection of Copy-Move Forgery in Images.

3. Altered Handwritten Text Detection in Document Images Using Deep Learning.

4. Altered Handwritten Text Detection in Document Images Using Deep Learning.

5. Error level analysis with convnet to identify image forgery.

6. Modeling of intelligent hyperparameter tuned deep learning based copy move image forgery detection technique.

7. Deep Learning Approach for Detecting Fake Images Using Texture Variation Network.

8. DETECTION OF IMAGE FORGERY USING DEEP LEARNING THROUGH CONVOLUTIONAL NEURAL NETWORKS.

9. Video face forgery detection via facial motion-assisted capturing dense optical flow truncation.

10. Deep Learning Feature Extraction Using Attention-Based DenseNet 121 for Copy Move Forgery Detection.

11. Review of Image Forensic Techniques Based on Deep Learning.

12. SPA-Net: A Deep Learning Approach Enhanced Using a Span-Partial Structure and Attention Mechanism for Image Copy-Move Forgery Detection.

13. Copy-Move Forgery Detection and Localization Using Deep Learning.

14. Forgery signature detection works on convolutional neural network and deep learning.

15. Fine-grained deepfake detection based on cross-modality attention.

16. An efficient deep learning architecture for Turkish Lira recognition and counterfeit detection.

17. Deep learning for image forgery classification based on modified Xception net and dense net.

18. Spatiotemporal Detection and Localization of Object Removal Video Forgery with Multiple Feature Extraction and Optimized Residual Network.

19. A detailed analysis of image and video forgery detection techniques.

20. ForensicNet: Modern convolutional neural network‐based image forgery detection network.

21. Global–Local Facial Fusion Based GAN Generated Fake Face Detection.

22. Detection of Image Level Forgery with Various Constraints Using DFDC Full and Sample Datasets.

23. Visual attention-based deepfake video forgery detection.

24. QDL-CMFD: A Quality-independent and deep Learning-based Copy-Move image forgery detection method.

25. SynSig2Vec: Forgery-Free Learning of Dynamic Signature Representations by Sigma Lognormal-Based Synthesis and 1D CNN.

26. Two-Stage Copy-Move Forgery Detection With Self Deep Matching and Proposal SuperGlue.

27. Enhancement Digital Forensic Approach for Inter-Frame Video Forgery Detection Using a Deep Learning Technique.

28. Hybrid features and semantic reinforcement network for image forgery detection.

29. Adaptive partitioning‐based copy‐move image forgery detection using optimal enabled deep neuro‐fuzzy network.

30. IID-Net: Image Inpainting Detection Network via Neural Architecture Search and Attention.

31. Design of Automated Deep Learning-Based Fusion Model for Copy-Move Image Forgery Detection.

32. Efficient Approach towards Detection and Identification of Copy Move and Image Splicing Forgeries Using Mask R-CNN with MobileNet V1.

33. Exploring varying color spaces through representative forgery learning to improve deepfake detection.

34. Datasets, clues and state-of-the-arts for multimedia forensics: An extensive review.

35. CAMU-Net: Copy-move forgery detection utilizing coordinate attention and multi-scale feature fusion-based up-sampling.

37. Critical insights into modern hyperspectral image applications through deep learning.

38. Image forgery detection based on fusion of lightweight deep learning models.

39. Deep learning based algorithm (ConvLSTM) for Copy Move Forgery Detection.

40. A survey on deep learning-based image forgery detection.

41. Magnifying multimodal forgery clues for Deepfake detection.

42. Image forgery detection using deep textural features from local binary pattern map.

43. Hybrid LSTM and Encoder–Decoder Architecture for Detection of Image Forgeries.

44. Improving multimedia information security by enriching face antispoofing dataset with a facial forgery method.

45. Exposing splicing forgery in realistic scenes using deep fusion network.

46. Image forgery detection using error level analysis and deep learning.

47. An approach for copy-move image multiple forgery detection based on an optimized pre-trained deep learning model.

48. Deep Learning for Detection of Object-Based Forgery in Advanced Video.

49. Feature enhancement and supervised contrastive learning for image splicing forgery detection.

50. ViXNet: Vision Transformer with Xception Network for deepfakes based video and image forgery detection.

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