Feb 26, APPLICATION NOTE 4167 Cookbook for Analog Video Filtering in Camera Systems

Similar documents
MAX11503 BUFFER. Σ +6dB BUFFER GND *REMOVE AND SHORT FOR DC-COUPLED OPERATION

Quadruple, 2:1, Mux Amplifiers for Standard-Definition and VGA Signals

Video Filter Amplifier with SmartSleep and Y/C Mixer Circuit

4-Channel Video Reconstruction Filter

4-Channel Video Filter for RGB and CVBS Video

EVALUATION KIT AVAILABLE Multirate SMPTE SD/HD Cable Driver with Selectable Slew Rate TOP VIEW +3.3V. 10nF IN+ IN- MAX3812 SD/HD GND RSET +3.

RIN+, ROUT_1, ROUT_2, R1, R2, R3, R21 R24. Maxim Integrated Products 1

Component Analog TV Sync Separator

MAX7461 Loss-of-Sync Alarm

This paper describes the analog video signals used in both broadcast and graphics applications.

Standard-Definition Video Filter Amplifiers with

STV6417 R/C/Pr, G/C, B/Pb Switches + Filter. C, Y, CVBS/Y Switches + Filter. Audio Switches Volume Control AUDIO R SLOW BLANK

ML6428. S-Video Filter and 75Ω Line Drivers with Summed Composite Output. Features. General Description. Block Diagram Σ BUFFER.

Intersil Digital Video Products

Fairchild s Switch Matrix and Video Filter Driver Products

Ultrasound Variable-Gain Amplifier MAX2035

Graphics Video Sync Adder/Extractor

Application Note Component Video Filtering Using the ML6420/ML6421

DATASHEET EL1883. Features. Applications. Ordering Information. Demo Board. Pinout. Sync Separator with Horizontal Output. FN7010 Rev 2.

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT /12/14 BIT 10 TO 105 MSPS ADC

Introduction to Data Conversion and Processing

Low-Cost, 900MHz, Low-Noise Amplifier and Downconverter Mixer

EVALUATION KIT AVAILABLE 12.5Gbps Settable Receive Equalizer +2.5V +3.3V V CC1 V CC. 30in OF FR-4 STRIPLINE OR MICROSTRIP TRANSMISSION LINE SDI+ SDI-

300MHz Single Supply Video Amplifier with Low In/Out Rail -IN -IN +IN +IN -VCC. Part Number Temperature Range Package Packaging Marking TSH341ILT

PART. Maxim Integrated Products 1

Is Now Part of To learn more about ON Semiconductor, please visit our website at

CXA1645P/M. RGB Encoder

Complete 10-Bit/12-Bit, 25 MHz CCD Signal Processor AD9943/AD9944

Model 7130 HD Downconverter and Distribution Amplifier Data Pack

Is Now Part of. To learn more about ON Semiconductor, please visit our website at

MULTIDYNE INNOVATIONS IN TELEVISION TESTING & DISTRIBUTION DIGITAL VIDEO, AUDIO & DATA FIBER OPTIC MULTIPLEXER TRANSPORT SYSTEM

OUTPUT COUPLING CAPACITOR-LESS Y/C MIX VIDEO AMPLIFIER WITH COAXIAL COMMUNICATION RECEIVER *MEET JEDEC MO-187-DA / THIN TYPE. 12dB LPF UTCOUT CLAMP

RGB Encoder For the availability of this product, please contact the sales office. VIDEO OUT Y/C MIX DELAY CLAMP

Complete 10-Bit, 25 MHz CCD Signal Processor AD9943

Complete 12-Bit 40 MHz CCD Signal Processor AD9945

TSH MHz Single Supply Video Buffer with Low In/Out Rail. Pin Connections (top view) Description. Applications. Order Codes

Interfaces and Sync Processors

DATASHEET ISL Features. Applications. Ordering Information. Block Diagram. Pinout. Triple Channel SD Video Driver with LPF

LMH0002 SMPTE 292M / 259M Serial Digital Cable Driver

Dac3 White Paper. These Dac3 goals where to be achieved through the application and use of optimum solutions for:

Features. Parameter Min. Typ. Max. Min. Typ. Max. Units

SingMai Electronics SM06. Advanced Composite Video Interface: HD-SDI to acvi converter module. User Manual. Revision 0.

FUNCTIONAL BLOCK DIAGRAM DELAYED C-SYNC CLOCK AT 8FSC. 5MHz 4-POLE LP PRE-FILTER DC RESTORE AND C-SYNC INSERTION. 5MHz 2-POLE LP POST- FILTER

High-end bi-directional aspect ratio converter with digital and analog outputs COPYRIGHT 2008 AXON DIGITAL DESIGN BV ALL RIGHTS RESERVED

Complete 12-Bit 40 MHz CCD Signal Processor AD9945

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT /12/14 BIT 10 TO 65 MSPS DUAL ADC

BASIC LINEAR DESIGN. Hank Zumbahlen Editor Analog Devices, Inc. All Rights Reserved

BTV Tuesday 21 November 2006

Complete 10-Bit and 12-Bit, 25 MHz CCD Signal Processors AD9943/AD9944

Introduction: Overview. EECE 2510 Circuits and Signals: Biomedical Applications. ECG Circuit 2 Analog Filtering and A/D Conversion

GS1524 HD-LINX II Multi-Rate SDI Adaptive Cable Equalizer

LED7706/7/8. LED drivers for backlighting and lighting applications.

6 GHz to 26 GHz, GaAs MMIC Fundamental Mixer HMC773A

Is Now Part of To learn more about ON Semiconductor, please visit our website at

Application Note AN-LD09 Rev. B Troubleshooting Low Noise Systems. April, 2015 Page 1 NOISE MEASUREMENT SYSTEM BASELINES INTRODUCTION

INTEGRATED CIRCUITS DATA SHEET. TDA8501 PAL/NTSC encoder. Preliminary specification File under Integrated Circuits, IC02

NCS2566. Six-Channel Video Driver with Triple SD & Triple Selectable SD/HD Filters

SingMai Electronics SM06. Advanced Composite Video Interface: DVI/HD-SDI to acvi converter module. User Manual. Revision th December 2016

Is Now Part of To learn more about ON Semiconductor, please visit our website at

Building Video and Audio Test Systems. NI Technical Symposium 2008

Reading an Image using CMOS Linear Image Sensor. S.R.Shinthu 1, P.Maheswari 2, C.S.Manikandababu 3. 1 Introduction. A.

Is Now Part of To learn more about ON Semiconductor, please visit our website at

Complete 12-Bit 30 MSPS CCD Signal Processor AD9845B

DATASHEET EL4583A. Features. Applications. Pinout. Ordering Information. Sync Separator, 50% Slice, S-H, Filter, HOUT. FN7503 Rev 2.

Complete 14-Bit 30 MSPS CCD Signal Processor AD9824

GaAs MMIC Double Balanced Mixer

10 GHz to 26 GHz, GaAs, MMIC, Double Balanced Mixer HMC260ALC3B

Software Analog Video Inputs

DVM-3000 Series 12 Bit DIGITAL VIDEO, AUDIO and 8 CHANNEL BI-DIRECTIONAL DATA FIBER OPTIC MULTIPLEXER for SURVEILLANCE and TRANSPORTATION

EL4583. Features. Sync Separator, 50% Slice, S-H, Filter, H OUT. Applications. Ordering Information. Pinout FN Data Sheet March 28, 2013

Nutube.US. 6P1 Evaluation Board. User Manual

OMNISTAR GX2. GX2-LM1000E Series 1310 nm Broadcast Transmitter DATA SHEET BENEFITS. 1 GHz bandwidth

LAUREL ELECTRONICS, INC.

Experiment 9 Analog/Digital Conversion

CXA2006Q. Digital CCD Camera Head Amplifier

CVOUT Vcc2 TRAP SWITCH Y/C MIX INTERNAL TRAP DELAY LPF LPF SIN-PULSE NPIN SCIN

EVE ONE. One-channel IP video encoder

Part 2. LV5333 LV5381 LV5382 LV7390 LV7770 LV7330 LV5838 LT4610 LT4600 LT4446 LT4100 LT4110 Accessories

Maintenance/ Discontinued

GaAs MMIC Double Balanced Mixer

SM02. High Definition Video Encoder and Pattern Generator. User Manual

Model 5240 Digital to Analog Key Converter Data Pack

DATASHEET EL4583. Features. Applications. Ordering Information. Pinout. Sync Separator, 50% Slice, S-H, Filter, HOUT. FN7173 Rev 4.

GS1881, GS4881, GS4981 Monolithic Video Sync Separators

L CHANNEL LOW POWER PREAMPLIFIER

ECEN689: Special Topics in High-Speed Links Circuits and Systems Spring 2011

Obsolete Product(s) - Obsolete Product(s) STV6432 Audio/Video Output Buffers for STB and DVD Devices FEATURES DESCRIPTION

CDK3402/CDK bit, 100/150MSPS, Triple Video DACs

LMH0344 3Gbps HD/SD SDI Adaptive Cable Equalizer

FLEX Series. Small-Scale Routing Switcher. KEY FEATURES AND BENEFITS Frame and signal. Flexible control. Communication and control.

CMN-91. Multiformat Signal Analyzer FEATURES

EVALUATION KIT AVAILABLE +3.0V to +5.5V, 125Mbps to 266Mbps Limiting Amplifiers with Loss-of-Signal Detector V CC FILTER.

Integrated Circuit for Musical Instrument Tuners

SA9504 Dual-band, PCS(CDMA)/AMPS LNA and downconverter mixers

LX3V-4AD User manual Website: Technical Support: Skype: Phone: QQ Group: Technical forum:

Is Now Part of. To learn more about ON Semiconductor, please visit our website at

Model FS HD4301VPD. Features

ML No585 Overview (v.2) *

4 MHz Lock-In Amplifier

HD Digital Videocassette Recorder HDW-250

Transcription:

Maxim > App Notes > VIDEO CIRCUITS Keywords: video, video filtering, Camera Systems, CCTV, Digital Still Camera, Security Camera, Digital Video Camcorder Feb 26, 2008 APPLICATION NOTE 4167 Cookbook for Analog Video Filtering in Camera Systems Abstract: Analog video filtering is widely used at the output stage in video camera applications, such as CCTV, security camera, digital still cameras (DSCs), and digital video camcorders (DVCs). As products are reduced in size and power, designers are moving away from discrete solutions to more integrated, one-chip solutions. This article explains different filter amplifier configurations for several popular DACs in the video camera market. It is an easy-touse guide for Maxim's various integrated video filter amplifiers that satisfy a wide range of video application requirements. This article was also featured in Maxim's Engineering Journal, vol. 62 (PDF, 1.3MB). In most video systems, lowpass filters are included on the video output lines of the video encoders. These filters reject high-frequency noise and smooth out the rising-/falling-edge video signals that are output from a video digital-toanalog converter (DAC). Traditionally, discrete passive filters have been used in such configurations. However, in most of today's video subsystems, an integrated filter amplifier follows the video DAC to clean up and amplify the video signal. This article details Maxim's variety of integrated video filter amplifiers that satisfy a wide range of video application requirements. In video-camera applications, the most common signals that video DACs output are composite video blanking and sync (CVBS) and luminance/chrominance (Y/C) signals. The eight filter amplifier configurations detailed in Examples 1 through 8 are composed of different combinations of the signal's DC level at the DAC output, signal amplitude, and ACor DC-coupling of the video signal. Common power-supply rails for integrated video filters are 5V or 3.3V. However, for the applications with the lowest power requirements (Examples 6 and 7), a video filter amplifier can be powered by a 1.8V or 2.5V supply. The specific filter amplifier (MAX9509) used in these low-power examples takes advantage of Maxim's patented DirectDrive technology, and delivers a 2V P-P video signal with an internal fixed gain of 8V/V. The following eight configurations have several common features. All outputs are measured at 75Ω loads. Thus, when the output graph shows 1V P-P, the output of the integrated filter amplifier should be 2V P-P. Also, a 75% TV NTSC colorbar signal is used as the source for all filter examples. Page 1 of 10

Example 1: Reconstruction Filter Connects the Video DAC to the Video Amplifier More detailed image (PDF, 115kB) In Example 1, the video DAC's output connects to a MAX9502G video amplifier with a reconstruction filter. The DAC's video signal output is biased so that the sync tip is near ground. The MAX9502G filters and boosts the signal, and then delivers a 2V P-P, DC-biased signal. The output of MAX9502G is also biased and its sync tip is approximately 300mV above ground. This sync-tip value changes to 150mV at the load due to the 75Ω divider setup at the output. A highlyintegrated solution, the MAX9502G consumes little board area, thus saving space in most portable system designs. Page 2 of 10

Example 2: Video DAC Sends an AC-Coupled Signal to the Video Amplifier More detailed image (PDF, 111kB) In Example 2, a video DAC delivers an AC-coupled video signal to the MAX9586 video filter amplifier. This is a good solution for single-supply applications that require the signal to be AC-coupled and the sync tip to be placed below ground. However, AC-coupling the video at the output does not put the black level at ground; instead, the black level changes as the content of the video signal changes. The MAX9586 can drive two DC-coupled video loads or a single ACcoupled 150Ω load. Page 3 of 10

Example 3: Example 1 with a 0.5V P-P, DC-Biased Signal More detailed image (PDF, 117kB) Example 3 is very similar to Example 1, except that the DAC can only output a 0.5V P-P, DC-biased signal. The MAX9502M is the appropriate solution in this case because of its 12dB fixed gain. The video signal at the load has a DC offset and the sync tip is about 150mV above ground. Also, the video signal output from the DAC must be above ground. The MAX9502M can drive a 2V P-P video signal into a 150Ω load to ground. Page 4 of 10

Example 4: Video DAC with Only One Output Line for CVBS or Y Signals More detailed image (PDF, 191kB) Example 4 is an interesting configuration. In certain applications, DACs provide both Y and C, but the Example 4 design has only one output line. This output should be selectable between CVBS and Y signals so that a CVBS signal can be created by using a summer (combiner) circuit. It is difficult to provide both types of signals on the same output line and switch between them at the appropriate time. This is usually done by implementing a 2:1 multiplexer on the output line. Fortunately, the MAX9524 video filter amplifier used in this example has two integrated analog single-pole switches that can be set up as a 2:1 multiplexer. This is very useful, as this single integrated chip can both select the Page 5 of 10

appropriate input and filter-amplify it. The DC level is unknown because of the summation of Y and C; therefore, the video signal should be AC-coupled before the filter-amplifier. The clamp circuitry after the AC-coupling capacitor sets the bias level. Designers should pay close attention to the combiner circuit that creates the CVBS signal. The DC offset levels of Y and C, as well as the DAC's voltage-compliance level, should be taken into careful consideration. Directly connecting Y and C, depending on the DC-bias level of each signal, could create a CVBS signal that extends beyond the DAC's voltagecompliance range. Example 5: Multiple Video Outputs with a Y/C-to-CVBS Mixer More detailed image (PDF, 293kB) Example 5 is appropriate for designs with multiple video outputs, as the MAX9512 has four separate output channels. Page 6 of 10

This device also has a Y/C-to-CVBS mixer, which creates a composite video signal from Y and C. Each output is capable of driving two DC-coupled video loads or an AC-coupled 150Ω load. This chip also has Maxim's SmartSleep circuitry (not shown) that can detect input signals or output loads and reduce power consumption by turning on/off different amplifiers accordingly. This configuration can most commonly be used to provide an S-video output, as well as two CVBS outputs. Example 6: Low Power Consumption with a Black Level Nearly at Ground More detailed image (PDF, 115kB) Example 6 minimizes power consumption by leveraging the MAX9509, which operates from a single 1.8V supply and consumes 11.7mW average power. Other advantages of this configuration are that the black level is almost at ground without the need for a large coupling capacitor on the output, and that the video signal is between -300mV and +700mV independent of the video signal contents. Because the amplifier has an internal fixed gain of 8V/V, the DAC output should have an amplitude of 0.25V P-P. This can easily be achieved by changing the value of the terminating resistor at the output of any type of DAC. Page 7 of 10

Example 7: Y, C, and CVBS Signals from One Output More detailed image (PDF, 123kB) For certain applications, only Y and C signals are available on the DAC's output, but the system must still deliver a CVBS signal. In such situations, a common solution is to use a combiner circuit to create the desired output signal. This common solution is similar to the combiner circuit in Example 4, but because the amplitude of the desired CVBS is only 0.25V P-P, meeting voltage compliance levels is probable. If the DAC normally outputs 1V P-P, an amplitude of 0.25V P-P can easily be achieved by changing the value of terminating resistor at the DAC. Example 7 demonstrates the appropriate filtering-amplifying solution for a very low-power application. The designer can obtain the appropriate amplitude (0.25V P-P ) by scaling down the terminating resistor at the DAC output. Because the DC bias level can be unknown (depending on the signals and combiner circuit), the signal should be AC-coupled into the MAX9509. A sync-tip clamp level-shifts the signal appropriately at the input. Because of the filter-amplifier's DirectDrive capabilities, the black level at the amplifier's output is sitting approximately at ground. This eliminates the need for large coupling capacitors on the output. The MAX9509 can, therefore, drive a 2V P-P video signal into a 150Ω load. Page 8 of 10

Example 8: Two Video Output Signals with No DC Offset More detailed image (PDF, 181kB) For applications that require two video output signals (such as S-video), the MAX9583 two-channel video filter amplifier provides the compact solution seen in Example 8. The MAX9583 has an internal fixed gain of 2V/V and, therefore, is suited for DACs with a 1V P-P output. The output of this device can be AC-coupled to a 150Ω load or two DC-coupled video loads. AC-coupling of the video signal eliminates any DC offset, and the black level changes as the video content changes. Page 9 of 10

Conclusion This article focuses on most of the common configurations seen in today's video-camera applications. CVBS and Y/C are by far the most common output signals in such applications. Rarely, on some of the higher end equipment, one might see a YPbPr output whether the video signal is standard definition (SD) or high definition (HD). Though this article does not discuss these rare applications, designers should be aware that there are integrated solutions available. U.S. Patent #7,061,327. Patent pending DirectDrive is a trademark of Maxim Integrated Products, Inc. Application Note 4167: www.maxim-ic.com/an4167 More Information For technical support: www.maxim-ic.com/support For samples: www.maxim-ic.com/samples Other questions and comments: www.maxim-ic.com/contact Keep Me Informed Preview new application notes in your areas of interest as soon as they are published. Subscribe to EE-Mail - Application Notes for weekly updates. Related Parts MAX9502: QuickView -- Full (PDF) Data Sheet -- Free Samples MAX9509: QuickView -- Full (PDF) Data Sheet MAX9512: QuickView -- Full (PDF) Data Sheet -- Free Samples MAX9524: QuickView -- Full (PDF) Data Sheet -- Free Samples MAX9583: QuickView -- Full (PDF) Data Sheet -- Free Samples MAX9586: QuickView -- Full (PDF) Data Sheet AN4167, AN 4167, APP4167, Appnote4167, Appnote 4167 Copyright by Maxim Integrated Products Additional legal notices: www.maxim-ic.com/legal Page 10 of 10