Friday, September 21, 2012

LIDAR mapping


There are basically two kinds of lasers used in LIDAR mapping. These are the pulse lasers and the continuous wave (cw) lasers. Floodrefers to these as small footprint, time-of-flight laseraltimetry and large footprint waveform digitizing.

The pulse laser emits a narrow laser pulse in the near infrared region of the electromagnetic spectrum. Each discrete pulse is then reflected off a surface on the earth and returned to the receiver. 


This signal yields a small footprint on the surface of the earth. One of the problems with this method of LIDAR mapping is that acceptable results may be somewhat difficult to achieve in dense and complex canopies [Flood, 2001]. While the signal may penetrate to the ground through holes in the canopy, many returns have to be filtered for correct classification of the ground surface. The cw laser emits a continuous signal stream where the receiver captures the full return wave. Distances are determined from phase measurements. The return signal covers a wider footprint and contains the entire structure of the return signal.

There are two distinct types of LIDAR systems based on the environment in which they are being used. A topographic lidar mapping system, which is the topic of this paper, is used over land and operates in the infrared portion of the electromagnetic spectrum. Over water, the infrared signal is partially absorbed by the water resulting in almost no return signal. A bathymetric system is used over water and it utilizes the blue-green portion of the electromagnetic spectrum, thereby allowing penetration and a return signal though the water.

While the speed of light is well known in a vacuum, one would expect that it would vary in the actual atmosphere. Thus, the raw distance, or sometimes called the range, is influenced by the variation in the actual speed of light. This variation can be modeled and corrected for in the processing of the raw laser signal.

The laser scanner is mounted in an aircraft just like an aerial camera. It can emit upwards to 50,000 pulses per second1. Thelaser mapping scan data is collected using a scanning mirror that rotates transverse to the direction of flight. The scan angle is generally less than 20 degree in both directions from the nadir line, although some system may scan up to 30 degree. The laser scan signal forms a footprint on the ground, which is referred to as the instantaneous field of view (IFOV). If the aircraft is completely level and if the laser scan is in the vertical position, then the IFOV will be a circle. As the laser scan signal moves off the vertical, the IFOV will become elongated, forming an ellipse, along the scan direction thereby enlarging the footprint .

LIDAR mapping


ఉపయోగించే లేజర్లు రెండు రకాల ప్రధానంగా ఉన్నాయి లిడార్ మాపింగ్ . ఈ పల్స్ లేజర్స్ మరియు నిరంతర అల (CW) లేజర్స్ ఉంటాయి. ఈ వంటి చిన్న అడుగుజాడల Floodrefers, టైమ్ ఆఫ్ ఫ్లైట్ లేజర్ altimetry మరియు పెద్ద పాదముద్ర డిజిటైజు తరంగ.

పల్స్ లేజర్ విద్యుదయస్కాంత వర్ణపటం యొక్క సమీపంలో పరారుణ ప్రాంతంలో ఒక ఇరుకైన పల్స్ లేజర్ ప్రసరింపచేస్తుంది. ప్రతి ప్రత్యేక పల్స్ అప్పుడు భూమి మీద ఉపరితల పరావర్తనం మరియు రిసీవర్ తిరిగి.


ఈ సిగ్నల్ భూమి ఉపరితలంపై ఒక తక్కువ పరిమాణాన్ని కలిగివుంటుంది. ఈ పద్ధతి సమస్యలు ఒకటి లిడార్ మ్యాపింగ్ ఆమోదయోగ్యమైన ఫలితాలు దట్టమైన మరియు క్లిష్టమైన పందిళ్ళకి లో [వరద, 2001] సాధించడానికి కొద్దిగా కష్టం కావచ్చు ఉంది. సిగ్నల్ పందిరి లో రంధ్రాల ద్వారా భూమి వరకు మాత్రమే చొచ్చుకుని, ఆ అనేక తిరిగి భూ ఉపరితలం సరైన వర్గీకరణ కోసం ఫిల్టర్ ఉంటుంది. CW లేజర్ రిసీవర్ పూర్తి తిరిగి అల బంధించి ఒక నిరంతర సిగ్నల్ స్ట్రీమ్ విడుదల చేస్తుంది. దూరాలు దశ కొలతలు నుండి నిర్ణయించబడతాయి. సంకేతం విస్తృత పాదముద్ర వర్తిస్తుంది మరియు సంకేతం యొక్క మొత్తం నిర్మాణం కలిగి ఉంది.

వారు ఉపయోగిస్తున్నారు వాతావరణాన్ని ఆధారంగా లిడార్ వ్యవస్థలు రెండు వేర్వేరు రకాలకు ఉన్నాయి. ఈ కాగితం అంశం ఒక స్థలవర్ణనాత్మక లిడార్ మ్యాపింగ్ వ్యవస్థ, భూమి మీద ఉపయోగిస్తారు మరియు విద్యుదయస్కాంత వర్ణపటం యొక్క పరారుణ భాగంలో పనిచేస్తుంది.నీటి మీద, ఇన్ఫ్రారెడ్ సిగ్నల్ను పాక్షికంగా దాదాపు సంకేతం ఫలితంగా నీటి గ్రహించటం. ఒక బాతిమెట్రిక్ వ్యవస్థ నీటి మీద ఉపయోగిస్తారు మరియు ఇది తద్వారా వ్యాప్తి మరియు నీటి అయితే ఒక సంకేతం అనుమతిస్తుంది విద్యుదయస్కాంత వర్ణపటం యొక్క నీలి ఆకుపచ్చ భాగం ఉపయోగించుకుంటుంది ఉంది.

కాంతి యొక్క వేగం బాగా శూన్యంలో అంటారు ఉండగా, ఒక వాస్తవ వాతావరణంలో మారుతుంది అని ఊహించిన దాని. అందువలన, శ్రేణి అని కొన్నిసార్లు ముడి దూరం, లేదా, కాంతి యొక్క సరైన వేగ లో వైవిధ్యం ప్రభావితమవుతుంది. ఈ వ్యత్యాసం ముడి లేజర్ సిగ్నల్ ప్రాసెసింగ్ లో నమూనా మరియు సరిచేయొచ్చు.

లేజర్ స్కానర్ కేవలం ఒక విహంగ కెమెరా వంటి విమానంలో మౌంట్. ఇది second1 50,000 పప్పులు వెళుతుంది వెలువరిస్తుంది చేయవచ్చు. లేజర్ మ్యాపింగ్ స్కాన్ డేటా విమాన దిశకు అడ్డంగా తిరుగుతూ ఒక స్కానింగ్ అద్దం ఉపయోగించి సేకరిస్తారు. కొన్ని వ్యవస్థ 30 డిగ్రీ వరకు స్కాన్ అయితే స్కాన్ కోణం, సాధారణంగా అట్టడుగు లైన్ నుండి రెండు దిశలలో కంటే తక్కువ 20 డిగ్రీ. లేజర్ స్కాన్ సిగ్నల్ వీక్షణ (IFOV) యొక్క తాత్కాలిక రంగంలో గా సూచిస్తారు గ్రౌండ్ లో ఒక పాదముద్ర ఉంది. విమానం పూర్తిగా స్థాయి మరియు లేజర్ స్కాన్ లో ఉంటే  నిలువు స్థానం, అప్పుడు IFOV ఒక సర్కిల్ ఉంటుంది. . లేజర్ స్కాన్ సిగ్నల్ నిలువు ఆఫ్ చేరితే, IFOV తద్వారా పాదముద్ర విస్తరించడం స్కాన్ దిశలో పాటు ఒక దీర్ఘవృత్తాకారం ఏర్పాటు పొడిగించిన అవుతుంది

Photogrammetry equipment's 3D Glass,3D Mouse and Infra Red Emitter

The easiest way to create depth perception in the brain is to provide to the eyes of the viewer two different images, representing two perspectives of the same object, with a minor deviation similar to the perspectives that both eyes naturally receive in binocular vision. Photogrammetry equipment 3d glasses are used for creating a 3d illusion from a pair of 2d-images.
nuvision3dglass
Photogrammetry equipment LCD shutter glasses are glasses used in conjunction with a display screen to create the illusion of a three dimensional image, an example of stereoscopy. Photogrammetry equipment Glass containing liquid crystal and a polarizing filter have the property that it becomes dark when voltage is applied, but otherwise is transparent. The glasses are controlled by an IR, RF, DLP-Link or Bluetooth transmitter that sends timing signal. The Glasses alternately darken over one eye, and then the other, in synchronization with the refresh rate of the screen, while the display alternately displays different perspectives for each eye, using a technique called Alternate-frame sequencing.

Our ability to see stereo-vision comes from each of our eyes seeing a slightly different view of the world. Our brain integrates these two images into one three-dimensional picture. Photogrammetry equipment, the key element in producing the stereoscopic depth effect is parallax. Parallax is the horizontal distance between corresponding left and right image points. The stereoscopic image is composed of two images generated from two related perspective viewpoints, and the viewpoints are responsible for the parallax content of a view.

Photogrammetry equipment Electro-stereoscopic displays provide parallax information to the eye by using a method related to that employed in the stereoscope. The 3D display systems normally in use on of the following methods: 

Photogrammetry equipment stereo glasses -
-Separate display for each eye (used in HMDs) 
-Shutter glasses (most common method) 
-Color filter glasses (used in some old 3D movies) 
-Polarizing glasses (used in some modern 3D movies)



An IR emitter which is a key photogrammetry equipment and is sold with wireless 3-D shutter glasses and essentially provides a method of transmitting the 3-D sync signal to the glasses by sending out an infra-red signal. The Photogrammetry eqipments IR emitter should be connected to the VESA compliant 3D Sync Out port on the side of the TV.

3d mouse is the one of the essential photogrammetry equipments for photogrammetry work station. A wide range of 3d mouses are available in photogrammetry equipments market. Three types of major 3d mouse are used for stereo feature extraction.

-Stealth mouse
-Tope mouse
-Immersion mouse


     Major photogrammetry equipments the Immersion and Stealth E-Mouse are free-hand devices for moving the cursor in the XYZ directions.

Photogrammetry Equipments Stealth Mouse:
    Stealth3dmouse was designed by ABC Software Developers, and resembles pointing devices used with analytical stereo plotters. The Stealth E-mouse features two data buttons on the back, six programmable buttons on the front for control of software functions, two data buttons on the top, and a centrally located Z thumb wheel.

The buttons are long life switches, made in Switzerland. The rated life is about 5 million cycles. If a button stops working, the mouse will have to be sent in for repair. In the diagram above, Buttons 1, 2, and 4 relate to the standard mouse left, right, and middle mouse buttons.

Buttons SL and SR relate to the Microsoft X1 and X2 application buttons, and are normally programmed to provide a shift function. The buttons 3, 5, 6, and 7 may produce special functions depending on the programming of your applications.

Photogrammetry Equipment -Leica Topo Mouse

Leica Topo Mouse is an advanced, ergonomic free-hand device for moving the cursor in the XYZ directions on digital photogrammetric workstations, and for carrying out frequent photogrammetric operations rapidly and efficiently. Topo Mouse is the tool for maximum productivity in time-consuming, routine tasks such as feature collection and DTM editing.

The Topo Mouse button and switch design is built to sustain millions of presses. All buttons and switches are software programmable and can be allocated to operations according to user preference.

 They can also be assigned to control clutching, shifting, sensitivity, and automatic slewing. Multiple sets of button and switch configurations can be stored to suit different operators, projects or software applications.

 Software products from Leica Geosystems such as Leica Photogrammetric Suite®, ORIMA, PRO600 and Stereo Analyst® for ArcGIS include functionality to use the Topo Mouse flexibly; successful operation with third party software products is straightforward as well.
Benefits
• High productivity • Low cost • Ergonomic design
• Convenient for commonly executed Photogrammetry functions • Fewer mistakes on routine tasks • Controls up to 30 operations

Topo Mouse
Immersion Mouse
Troubleshooting

If the photogrammetry equipments 3d mouse stops working check the following:
If the mouse does not work at all, make sure it is plugged into the computer, that the computer is working properly, and that there is a red light at the underside of the mouse.
If the Z-wheel does not work, run any application program that normally recognizes the scroll wheel on a normal mouse, and see if the Z-wheel scrolls the application. If it does, then the mouse z-wheel is working properly.
If a button does not work, try another button to make sure the mouse is working.
If the mouse skips when moving, try a different surface. The mouse does not work well on certain surfaces, especially polished or reflective ones.
If the buttons work, but do not act properly, contact your software vender for help.



Photogrammetric Equipment


Copenhagen, August 28, 2012 – Phase One Industrial, a leading manufacturer and provider of medium format aerial and industrial digital photography equipment, today announced that the Phase One iXA aerial camera system is now fully compatible with Track’Air’s line of innovative Flight Management Systems.
Aerial-Camera
Track’Air suite of Flight Management Systems streamline and accelerate both the preparation and execution of airborne missions, optimizing all aspects of flying an airborne project, including data and image collection for planning, digitizing, flight planning, airborne image acquisition and final data archiving. The systems thus greatly reduce the operational costs associated with aerial surveys and aerial image collection.

Dov Kalinski, General Manager of Phase One Industrial said, "Working with Track’Air Flight Management Systems enables the iXA to deliver greatly increased levels of efficiency and productivity. Now the iXA not only provides the highest image quality and detail, but it also offers operators the tools to optimally plan and execute airborne projects."

The Phase One iXA aerial camera is an integrated medium format camera system that was designed from the ground up exclusively for aerial photography. Developed with leading experts and engineers in the field, the iXA is built to meet the exacting needs of aerial photography and streamline the entire capture and processing workflow. The camera is a major addition to the current aerial implementations that Phase One already provides to partners in the industry. With a choice of 80 megapixel or 60 megapixel models, the iXA is designed to easily incorporate into existing or new systems, making it the perfect solution for integrators or end users looking for a rugged, high-quality industrial-grade aerial camera system.

About Phase One Industrial

Phase One Industrial is a division of Phase One dedicated to research, development and manufacturing of specialized industrial camera systems and equipment. Phase One Industrial camera systems are built specifically for industrial applications such as aerial photography, fine art reproduction and machine vision, and provide advanced hardware and imaging soft- ware solutions that meet the unique requirements of their users. For more information please visit http://industrial.phaseone.com.

About Track’Air

Over the last 15 years, Track’Air has created a comprehensive line of Flight Management Systems, Camera Systems, Displays and Camera Mounts to fit the needs of the ever changing airborne data acquisition industry. It has been Track’Air’s passion to create diverse, uncompli- cated, and dependable systems for the ever evolving aerial survey industry. This has allowed Track’Air to maintain superiority by creating new software and hardware solutions for the innovative applications and uses within this industry. For more information, please visithttp://trackair.com
Source: Author

What IS LiDAR


Light Detection and Ranging (LiDAR)  proven approach to making quick and correct terrain models for applications in many sorts of industries. The technology relies on a scanning laser combined with each GPS and inertial technology to form a 3 dimensional set of points (point cloud). We can't ignore theimportance of Lidar in mapping industry.

From a sturdy LiDAR information set, Airborne lasers will produce variety of mapping product for its clients:
  • Digital Elevation Models (DEM)
  • Digital Terrain Models (DTM)
  • Contours of varying intervals
  • Slope maps
  • Planimetric Mapping
  • Tree height analysis
  • Cut and Fill modeling
  • Ortho-rectification together with imagery
LiDAR technology By Airborne Imaging
Airborne Imaging has been a number one supplier of airborne LiDAR since its inception in 2004. the corporate created it a priority from the outset to use solely industrial, off the shelf LiDAR systems from the most effective makers within the world.

Our original system in 2004 was an Optech 3100-EA . With the expansion in business a second Optech 3100-EA was added in our bag in 2007. In 2009, due to high demand, the purpose a 3rd system was needed. At now, we have a tendency to selected to get the Leica ALS 50-II LiDAR system, that conjointly has multiple pulse within the air capability.

All of the systems are mounted wing mounted and also the Leica has an extra approved mount for helicopter platforms, for corridor or high density applications.

To date, Airborne has acquired many thousands of sq. miles of Airborne LiDAR information using the 3 systems, throughout North America.

Regardless of purpose density or accuracy, Airborne has the expertise and information to flight set up, field execute, post method and deliver a final map normal LiDAR terrain product to our shoppers.

All processing of knowledge is handled by our senior in-house processing team, and quality management and assurance is a few of the foremost stringent within the LiDAR acquisition business these days.

For more information visit:http://airborneimaginginc.com/airborne-imaging-lidar-services/airborne-lidar/

Microstation Tutorial on Tool frame


MicroStation uses the terms drawing tool frames, tool boxes and tools to distinguish among these elements, but the Help file, which you should use frequently, is not always consistent in its naming. The Photogrammetry Mapping Basic Microstation Tutorial is a general description of the elements.


Photogrammetry Mapping Basic Microstation Tutorial on Tool frame (or tool bar)


Four major tool frames are identified in the TOOLS section of the menu line. The tool frames are

1) Standard - contains the Windows operations such as file open, print, and spell check

2) Attributes - settings for line styles and width, and color

3) Primary - this tool frame provides quick access to major drawing features such as levels, model and reference cells, element information, and the accudraw drawing system

4) Main 2d or Main 3d - for 2-dimensional or 3- dimensional drawing tools, dependent on your drawing type


These tool frames are usually turned on (from Tools on the menu line in the above screen display, Figure 2). The first three are docked on the top of the page, but the Main tool frame may be docked on any side or left floating on the screen as the user chooses. Movement around the screen is accomplished with the familiar click and drag operation of Windows.

Photogrammetry Mapping Basic Microstation Tutorial on Tool Boxes

The second layer of Tools is the Tool boxes that contain many individual drawing tools. Figure 4 below is a screen display obtained from

Tools>Main >

In the “blank drawing.dgn” file of the tutorial, the Main tool bar is already available to the user on the screen because it was docked earlier. In the figure within the tutorial the Main toolbar appears as the vertical, floating bar with icons on the left. The Tool boxes within the Main tool bar are displayed on the right side. What is the image on your computer screen?

To see the screen when the Main tool bar has not already been opened, click on the Main check box. Reset the previous view by going to Tools, place the cursor over MAIN to bring up the right side list, and slide the cursor over to click on Main
Since the Main tool frame in Microstaion V8 is the most used for drawing activities, the elements will be identified here before proceeding. In Figure below, starting on the upper left and proceeding down of Microstaion V8 main tool frame, the tool boxes are:
 -Element selection tools, used to select elements to be worked upon.
 -Point tools, used for placing points in the drawing.
microstation-trainning
Tool frames, tool boxes and Main drawing tools of Microstaion V8

-Hatching tools.
-Arc tools, used to place various types of arcs in the drawing.
-Tag tools, for tagging elements in a drawing.
-Group modifying tools, used to group or ungroup elements.
-Measuring tools, used to measure distances, angles, areas, and volumes.
-Attribute tools, for modifying the attributes of elements in Microstaion V8.
-The Delete element button.
Beginning at the top right we have the following:
-Fence tools, for fencing elements and modifying fence contents. Fences are used to select multiple drawing elements as subjects for one or more common operations in Microstaion V8.
-Line tools, for placing lines of various types within the drawing.
-Shape tools, for placing various 2-d shapes in the drawing.
-Circle tools, for placing circles and ellipses in the drawing.
-Text tools, for placing and modifying text.
-Cell tools, for placing cells in the drawing.
-Dimensioning tools
-Element modification tools, for copying, moving, and rotating elements.
-Line modification tools, for doing the same to lines.
What happens if you click on one of the Tool boxes of Microstaion V8 under Main?
Try the “Measure” button. Within the “Measure” tool box, separate tools are available to measure distances, angles, areas, and volumes. Now click on the button and move the cursor to the right while holding down the left mouse button. If you go far enough to the right you will detach the tool box and leave it opened on your screen. Close it by clicking on the red “X”.
microstation-trainning
This Microstaion V8 tutorial only shows a small fraction of the tools available. As you use MicroStation, the Help section can be your friend. Even if the terminology is not always consistent, the assistance is valuable.

Two Letter Key-ins in Microstation V8


Two Letter Key-ins is a important feature in Microstation V8. Here you will find a set of microstation two letter key-ins for all beginners and experts. This tutorial is very helpful and a mast matirial for photogrammetry and lidar professionals

Two Letter Key-ins for view manipulation 
OF= Turn off levels by number
ON= Turn on levels by number
SV= Save view
VI= Attach saved view
DV= Delete saved view
Two Letter Key-ins for Text and dimensioning in Microstation V8
FT= Active font
DF= Opens font dialog box
TH= Active height
TW= Active width
TX= Active height and width
LS= Active line spacing
TI= Tag Increment amount
LD= Dimension level
TV= Upper and lower dimension tolerance limits
Two Letter Key-ins for Settings in Microstation V8
AA= Active angle
AS= Active scale
XS= Active x scale
YS= Active y scale
ZS= Active z scale
GU= Master/Grid.
Two Letter Key-ins for Microstation V8 Training 
KY= (Snap) Divisor
UR= (Unit Lock) Distance
Set element and pattern attributes
AP= Active pattern cell
LV= Active level
CO= Active color
PA= Active pattern angle
LC= Active line style
PD= Active pattern spacing
WT= Active line weight
PS= Active pattern scale.
Two Letter Key-ins for Precision input in Microstation V8 Training
XY= <x,y,z> from origin along design files axes
DI= <distance, direction> from last data or tentative point relative to view axes
DL= <Dx, Dy, Dz> from last data or tentative point in design coordinates
DX= <Dx, Dy, Dz> from last data or tentative point in view coordinates
Two Letter Key-ins for Cells
AC= Set active cell and select place active cell tool with relative off
AR= Set active cell and select place active cell tool with relative on
CM= Place active cell matrix tool
PT= Active point
LT= Active terminator
TS= Terminator scale
CR= Edit cell information
CD= Delete cell from cell library
CC= Create cell
3D modeling
DP= Set the display depth from 0.0 of view's z-axis
DD= Distance to move display depth from current values
AZ= Set the active depth from 0.0 of the view's z-axis
DZ= Distance to move active depth from current value
File management
RD= Open design file
XD= Open design file with active design's view configuration
RC= Attach cell library
RF= Attach reference file
DR= Displays contents of a text file
CT= Attach color table
AM= Attach and activate menu
AT= Activate tutorial
Digitizing in Microstation V8
SD= Active stream delta
ST= Active stream tolerance
User command
UC= Activate user command
UCC= Compile user command
Other in Microstation V8
FF= Copy fence contents to new design file
GO= Global origin
SF= Move fence contents to new design file