# QIMP SDK release 1.3
Source: [https://docs.qualcomm.com/doc/80-70017-52/topic/qimp_sdk_release_1_3.html](https://docs.qualcomm.com/doc/80-70017-52/topic/qimp_sdk_release_1_3.html)
## Release information
Table : Software version
| Software | Version |
| --- | --- |
| Yocto | Kirkstone 4.0.22 |
| Kernel | 6.6.52 |
Table : Release tag version
| Release tag | Version |
| --- | --- |
| Firmware release tag | r1.0\_00058.0 |
| Manifest release tag | qcom-6.6.52-QLI.1.3-Ver.1.1 |
| Meta-qcom-extras release tag | r1.0\_00059.0 |
| QIMP SDK release tag | qcom-6.6.52-QLI.1.3-Ver.1.1\_qim-product-sdk-1.1.2 |
Table : Supported platforms and reference kits
| SoC platforms | Reference kits |
| --- | --- |
| QCS6490 |
- Qualcomm® RB3 Gen 2 Vision Development Kit
- Qualcomm® RB3 Gen 2 Core Development Kit
|
| QCS5430 |
- Qualcomm® RB3 Gen 2 Lite Vision Development
Kit
- Qualcomm® RB3 Gen 2 Lite Core Development
Kit
|
| QCS9075 | Qualcomm^®^ IQ9 Beta Evaluation Kit |
| QCS8275 | Qualcomm^®^ IQ8 Beta Evaluation Kit |
## Contents of the release
The contents of the Qualcomm^®^ Intelligent Multimedia Product (QIMP) SDK
release include:
- Recipes for building the individual components:
- Qualcomm^®^ Intelligent Multimedia SDK (IM SDK)
- Lite Runtime (LiteRT)
Note: LiteRT was formerly
known as TensorFlow Lite.
- Qualcomm^®^ Neural Processing SDK
- Qualcomm^®^ AI Engine direct SDK
- Sample applications that demonstrate how to use the Qualcomm IM SDK to
develop AI edge-based applications.
To get started with the QIMP SDK, see [Qualcomm Intelligent Multimedia Product (QIMP)
SDK Quick Start Guide](https://docs.qualcomm.com/bundle/publicresource/topics/80-70017-51/introduction.html).
## New features
The following new features applicable to QCS6490, QCS9075, and QCS8275 are introduced
in the QIMP SDK release:
- AI/ML supports execution of batched Qualcomm Neural Processing SDK models
and batched QNN models.
- Container supports application deployment using an API-based approach –
GStreamer daemon (GSTD).
## Sample applications
| Sample application | Description | Supported SoC |
| --- | --- | --- |
| **AI/ML applications** | **AI/ML applications** | **AI/ML applications** |
| `gst-ai-face-detection` | Collects the live video input from a camera, file, or an RTSP
stream and uses the Qualcomm Neural Network face detection model to
produce a preview with the overlaid AI model output on the HDMI
display. | QCS6490, QCS9075, and QCS8275 |
| `gst-ai-face-recognition` | Collects the live video input from a camera or an RTSP stream and
shares this input for face detection and recognition. | QCS6490, QCS9075, and QCS8275 |
| **Video application** | **Video application** | **Video application** |
| `gst-ai-smartcodec-example` | Reduces the network bandwidth or storage for input feed from a
camera or file source. | QCS6490, QCS9075, and QCS8275 |
For the complete list of sample applications supported in the QIMP SDK and
instructions on how to run them, see [Sample applications](https://docs.qualcomm.com/bundle/publicresource/topics/80-70017-50/example-applications.html).
## Python sample applications
| Sample application | Description | Supported SoCs |
| --- | --- | --- |
| **AI/ML applications** | **AI/ML applications** | **AI/ML applications** |
| `gst-parallel-inference.py` | Supports multiple AI/ML models run in parallel (object detection,
classification, segmentation, and pose detection) on streams from a
camera, file source, or RTSP. | QCS6490, QCS9075, and QCS8275 |
| `gst-daisychain-detection-pose.py` | Collects the live video input from a camera or an RTSP stream and
shares this input for face detection and recognition. | QCS6490, QCS9075, and QCS8275 |
| **Video application** | **Video application** | **Video application** |
| `gst-concurrent-videoplay-composition.py` | Allows concurrent video playback for MP4 AVC (H.264) videos and
performs composition on a video wall display. | QCS6490, QCS9075, and QCS8275 |
| **Camera application** | **Camera application** | **Camera application** |
| `gst-multi-camera-stream-example.py` | Enables you to stream from two camera sensors
simultaneously. | QCS6490 |
For the complete list of Python sample applications supported in the QIMP SDK and
instructions on how to run them, see [Python applications](https://docs.qualcomm.com/bundle/publicresource/topics/80-70017-50/python-sample-applications.html).
## Issues resolved
- 18 FPS is observed with `gst-ai-parallel-inference` for file
source.
- `gst-ai-parallel-inference` hangs and black screen is observed at
EOS for RTSP source.
- RTSP sink streaming fails to play when you use multiple sinks such as RTSP, file
sink, and display with two or more input streams in
`multi-input-output-object-detection`.
- `gst-ai-monodepth` and `gst-ai-parallel-inference`
fails on QCS9075.
## Limitations
The following are the known limitations in the QIMP SDK release:
- When using the `qtioverlay` plugin with detection models,
frame drops may occur, especially with many detections.
**Solution**:
Use `qtivcomposer` for detection-based ML use
cases.
- A drop of 1–2 FPS may be observed with the three-stream camera use
case.
- AI/ML parallel inference for 24 streams varies between 25–30 FPS, which
is less than the expected 30 FPS.
- Segfault occurs while using Ctrl + C for Qualcomm
Neural Processing SDK use cases with DLC models.
- Frame drops are observed with the QNN plugin while running on GPU
delegate.
- Low FPS with daisychain detection and pose GStreamer pipeline.
- Observe stability issues with gstreamer pipeline in batched model
usecases.
- High inference time is seen with
`deeplabv3_resnet50.dlc`.
- Concurrent streams with smart codec functionality encounter pipeline stalls
and cleanup errors at EOS.
- Pose estimation for the `facemap_3dmm_quantized.bin` (QNN) AI
hub model does not work with the Qualcomm IM SDK pipeline due to caps
mismatch.
- Caps mismatch with the AI hub face detection QNN model.
- The `gst-ai-parallel-inference` sample application hangs for
QCS8275.
- Support for the FastCV engine is disabled in
`qtivtransform`.
Last Published: Jan 16, 2025
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