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MT9F002I12-N4000-DP Datasheet(PDF) 10 Page - ON Semiconductor |
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MT9F002I12-N4000-DP Datasheet(HTML) 10 Page - ON Semiconductor |
10 / 93 page MT9F002 DS Rev. H Pub. 6/15 EN 10 ©Semiconductor Components Industries, LLC,2015. MT9F002: 1/2.3-Inch 14 Mp CMOS Digital Image Sensor Operating Modes Operating Modes By default, the MT9F002 powers up with the serial pixel data interface enabled. The sensor can operate in serial HiSPi or parallel mode. For low-noise operation, the MT9F002 requires separate power supplies for analog and digital power. Incoming digital and analog ground conductors should be placed in such a way that coupling between the two are minimized. Both power supply rails should also be routed in such a way that noise coupling between the two supplies and ground is minimized. Caution ON Semiconductor does not recommend the use of inductance filters on the power supplies or output signals. Figure 5: Typical Configuration: Serial Four-Lane HiSPi Interface Notes: 1. All power supplies should be adequately decoupled. ON Semiconductor recommends having 1.0F and 0.1F decoupling capacitors for every power supply. 2. ON Semiconductor recommends a resistor value of 1.5k, but a greater value may be used for slower two-wire speed. 3. This pull-up resistor is not required if the controller drives a valid logic level on SCLK at all times. 4. The GPI pins can be statically pulled HIGH or LOW and can be programmed to perform special func- tions (TRIGGER/VD, OE_BAR, SADDR, STANDBY) to be dynamically controlled. GPI pads can be left floating, when not used. 5. VPP, which is not shown in Figure 5, is left unconnected during normal operation. VDD_IO VDD_TX VDD_PLL VDD VAA VAA VAA_PIX Master clock (2–64 MHz) SDATA SCLK RESET_BAR TEST EXTCLK DGND AGND Digital ground Analog ground Digital Core power1 HiSPi PHY I/O power1, 10 Analog power1 To controller From controller PLL power1 Digital I/O power1 Analog power1 VAA_PIX SLVSC_N SLVSC_P SLVS_0P SLVS_0N SLVS_1P SLVS_1N SLVS_2P SLVS_2N SLVS_3P SLVS_3N FLASH SHUTTER GPI[3:0]4 0.1 µF 1.0 µF 0.1 µF 1.0 µF 0.1 µF 1.0 µF 0.1 µF 1.0 µF 0.1 µF 1.0 µF 0.1 µF 1.0 µF |
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