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DLPA2000 Datenblatt(PDF) 34 Page - Texas Instruments |
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DLPA2000 Datenblatt(HTML) 34 Page - Texas Instruments |
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34 / 63 page ![]() 7.3.3.2 SPI Flash Programming The SPI pins of the flash can directly be driven for flash programming while the DLPC34xx controller I/Os are tri-stated. SPI0_CLK, SPI0_DOUT, and SPI0_CSZ0 I/O can be tri-stated by holding RESETZ in a logic low state while power is applied to the controller. The logic state of the SPI0_CSZ1 pin is not affected by this action. Alternatively, the DLPC34xx controller can program the SPI flash itself when commanded via I2C if a valid firmware image has already been loaded and the controller is operational. 7.3.4 I2C Interface Both of the DLPC34xx I2C interface ports support a 100-kHz baud rate. Because I2C interface transactions operate at the speed of the slowest device on the bus, there is no requirement to match the speed of all devices in the system. 7.3.5 Content Adaptive Illumination Control (CAIC) Content Adaptive Illumination control (CAIC) is part of the IntelliBright® suite of advanced image processing algorithms that adaptively enhances brightness and reduces power. In common real-world image content most pixels in the images are well below full scale for the R (red), G (green), and B (blue) digital channels input to the DLPC34xx. As a result of this, the average picture level (APL) for the overall image is also well below full scale, and the dynamic range for the collective set of pixel values is not fully used. CAIC takes advantage of the headroom between the source image APL and the top of the available dynamic range of the display system. CAIC evaluates images on a frame-by-frame basis and derives three unique digital gains, one for each of the R, G, and B color channel. During image processing, CAIC applies each gain to all pixels in the associated color channel. The calculated gain is applied to all pixels in that channel so that the pixels as a group collectively shift upward and as close to full scale as possible. To prevent any image quality degradation, the gains are set at the point where just a few pixels in each color channel are clipped. The Source Pixels for a Color Channel and Pixels for a Color Channel After CAIC Processing figures below show an example of the application of CAIC for one color channel. APL Headroom Single-pixel Headroom Time 255 110 (1) APL = 110 . Figure 7-6. Source Pixels for a Color Channel Clipped to 255 Time 255 166 (1) APL = 166 (2) Channel gain = 166/110 = 1.51 Figure 7-7. Pixels for a Color Channel After CAIC Processing Above, Figure 7-7 shows the gain that is applied to a color processing channel inside the DLPC34xx. Additionally, CAIC adjusts the power for the R, G, and B LED by commanding different LED currents. For each color channel of an individual frame, CAIC intelligently determines the optimal combination of digital gain and LED power. The user configurable CAIC settings heavily influence the amount of digital gain that is applied to a color channel and the LED power for that color. DLPC3420 DLPS232 – OCTOBER 2021 www.ti.com 34 Submit Document Feedback Copyright © 2021 Texas Instruments Incorporated Product Folder Links: DLPC3420 |
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