Showing posts with label GIS. Show all posts
Showing posts with label GIS. Show all posts

Wednesday, March 26, 2008

Big Event on Internet GIS

Ming-Hsiang (Ming) Tsou is Associate Professor in the Department of Geography at San Diego State University. He holds a Ph.D. from University of Colorado at Boulder (2001), M.A. from State University of New York at Buffalo (1996) and B.S. from National Taiwan University (1991). As a Cartographer and GIS specialist, his research and teaching interests include Internet mapping, wireless mobile GIS, distributed GIS applications, multimedia cartography, user interface design, and software agents. He co-authored a scholarly book, “Internet GIS” with Dr. Zhong-Ren Peng at University of Wisconsin at Milwaukee published in 2003.

The Year 2005 is a very important year for the development of Internet GIS. Many significant changes are happened in this year in terms of new technology, new services, new infrastructures, and new users. Even though it is only September now, and we still have three more months left. I am pretty sure that this year (2005) will be unforgettable in the history of Internet GIS. This paper will highlight three major changes happened in the development of Internet GIS in 2005 and discuss the future impacts of Internet GIS in the next decade.

The first big change comes from the GIS awareness in the general public. Two major events, the South Asia Tsunami and the Hurricane Katrina, started to wake up people how important the GIS is in order to protect our homes, our friends, and our own lives. GIS is a good teacher for us and it teaches us how to respect Nature and how to understand her actions. When viewing satellite imagery, categorizing land use data, or comparing the changes of land cover before/after the disasters, we are getting very important messages from Nature. These important messages can be received by hundreds of millions people almost immediately via Internet GIS. Many major satellite image companies (such as Digital Globe and Space Imaging) and GIS vendors (ESRI and Google) are generous offering free satellite images and GIS data/maps for the general public and the media. The general public can vividly see the changes of images caused by the Nature disasters and feel the devastating power of these nature events. Many media (TVs, newspapers) were copying these images from the Internet and then re-broadcasted to hundreds of million readers all over the world. Thank to the progress of Internet GIS technology and the World Wide Web, people can access many GIS data and maps in near real-time whenever they are available. The general public started to understand the power of geospatial technology because seeing is believing.

Saturday, March 1, 2008

India’s telecom giant BSNL to provide Location-Based Services to mobile customers

Telenity - a provider of converged services platforms and applications for communications networks - provided this service to BSNL, has already done a soft launch in India and the services are being used by the staff of BSNL for the past couple of months. With Telenity’s Canvas LES, BSNL subscribers can easily find, locate or monitor phones and other assets based on their geographic position, points of interest and securely fine-tune their privacy profile on the fly when they want it.

With these subscription-based services one can track their children, make new communities for entertainment, get information about the city or zero in on the nearest service of choice, be it a hospital, police station or even petrol pump.

"As we expand our network, our main goal is to meet the personalisation needs of our fast growing subscriber base. The location-based services solution from Telenity will usher in a new era in telecommunication," says S. Krishnan, General Manager, BSNL.

The service does not require consumers to buy anything extra as long as they subscribe to the LBS service, and promises to change the way people in India use their cell phones.

While the service allows to track people down, privacy of subscribers is of prime concern. "Our converged location and presence solution supports complete and total privacy of location-based services across any network," promises Ashwani Vachher, General Manager, Telenity. To ensure that the services are not misused, the subscriber is given full control over the options. They can choose whether or not to allow a person to track them. The ones who might really benefit though, are transport companies, marketing firms and other organisations who want to track their employees’ whereabouts.

- BSNL
Bharat Sanchar Nigam Limited (BSNL) was formed on October 1, 2000. Today, BSNL has a network of over 45 million lines covering 5,000 towns with 43.5 million connections. More information on BSNL is available on the Web at www.bsnl.com.in.

- Telenity
Telenity is a provider of next generation converged services platforms and applications for communications networks. Telenity's IMS compliant converged services solutions include: reusable service delivery and content components enabling rapid service creation, deployment and execution functionalities across multiple services and applications; location and presence servers; integrated messaging solutions; and value added services. For more information visit: www.telenity.com.

INCA



See the dedication of Team for Anoop

Friday, February 29, 2008

New COGO functionality IN ArcGIS 9.2

ArcGIS

ArcGIS 9.2 has a new set of coordinate geometry (COGO) functionality for ArcEditor and ArcInfo users. COGO provides a number of different methods for creating features from surveyed bearings, distances, and angles. This is commonly used when creating land records databases. ew COGO toolbar and changes to
N
There is a new COGO toolbar available at 9.2 that
s querying and interacting with COGO features. The commands on the COGO toolbar are availablercInfo licenses only. the Advanced Editing toolbar contains commands specific to creating COGO features as well a for ArcEditor .

ESRI New file geodatabase format

New Geodatabase format
You can view also in edn
www.edn.com


Until now, single-user geodatabases in ArcGIS have been personal geodatabases stored in Microsoft Access.Personal geodatabases satisfy basic requirements. However their performance slows markedly as the size of datasets stored in them increases, and they have a 2 GB overall database size limit. Accessing a personal geodatabase over a network concurrently with other users can present additional problems; performance slows further and data locks can stay around longer than you’d expect, blocking other users from accessing the data.
ArcGIS 9.2 introduces an alternative, a new type of single-user geodatabase referred to as the file geodatabase. A file geodatabase stores datasets as a folder of files on your file system, much like you’d store a folder of shapefiles. Individual datasets can be as large as 1 terabyte and there is no overall database size limit. Compared to personal geodatabases, file geodatabases improve performance, store vector data more efficiently, and improve concurrency and multi-user access over a network. You can also optionally store vector feature classes and tables in a compressed, read-only format to reduce storage requirements further. File geodatabases are also fully supported across platforms. One of the driving forces behind introducing this format was to provide support on both Windows and UNIX. For example, you can use Java to create and access file geodatabases on UNIX.
To create a file geodatabase, right-click a folder in the ArcCatalog tree view and click New, then click File geodatabase.
Personal geodatabases continue to be fully supported at 9.2. You can continue to create and work with personalgeodatabases just as you always have. Personal geodatabases can be upgraded to 9.2 in the usual way so that you can use them with all the new functionality introduced at 9.2.
Personal geodatabases and file geodatabases look the same in ArcCatalog, and the structure of the data within them is the same. You can easily move data from one to another with the Copy and Paste commands. You also work with them the same way, whether accessing data through ArcCatalog or ArcMap, or through ArcObjects as you’re developing a custom application. The only exception to this is the syntax you use to perform a SQL query in ArcMap: there are some slight differences.
In the Desktop Help, see these topics:
Mapping and visualization > Navigating and interacting with maps > Selecting features and graphics > About building an SQL expression
Mapping and visualization > Navigating and interacting with maps > Selecting features and graphics > SQL reference File geodatabases store data

ESRI New file geodatabase format

New Geodatabase format
You can view also in edn
http://www.edn.com/


Until now, single-user geodatabases in ArcGIS have been personal geodatabases stored in Microsoft Access.Personal geodatabases satisfy basic requirements. However their performance slows markedly as the size of datasets stored in them increases, and they have a 2 GB overall database size limit. Accessing a personal geodatabase over a network concurrently with other users can present additional problems; performance slows further and data locks can stay around longer than you’d expect, blocking other users from accessing the data.
ArcGIS 9.2 introduces an alternative, a new type of single-user geodatabase referred to as the file geodatabase. A file geodatabase stores datasets as a folder of files on your file system, much like you’d store a folder of shapefiles. Individual datasets can be as large as 1 terabyte and there is no overall database size limit. Compared to personal geodatabases, file geodatabases improve performance, store vector data more efficiently, and improve concurrency and multi-user access over a network. You can also optionally store vector feature classes and tables in a compressed, read-only format to reduce storage requirements further. File geodatabases are also fully supported across platforms. One of the driving forces behind introducing this format was to provide support on both Windows and UNIX. For example, you can use Java to create and access file geodatabases on UNIX.
To create a file geodatabase, right-click a folder in the ArcCatalog tree view and click New, then click File geodatabase.
Personal geodatabases continue to be fully supported at 9.2. You can continue to create and work with personalgeodatabases just as you always have. Personal geodatabases can be upgraded to 9.2 in the usual way so that you can use them with all the new functionality introduced at 9.2.
Personal geodatabases and file geodatabases look the same in ArcCatalog, and the structure of the data within them is the same. You can easily move data from one to another with the Copy and Paste commands. You also work with them the same way, whether accessing data through ArcCatalog or ArcMap, or through ArcObjects as you’re developing a custom application. The only exception to this is the syntax you use to perform a SQL query in ArcMap: there are some slight differences.
In the Desktop Help, see these topics:
Mapping and visualization > Navigating and interacting with maps > Selecting features and graphics > About building an SQL expression
Mapping and visualization > Navigating and interacting with maps > Selecting features and graphics > SQL reference File geodatabases store data

ArcMap enhancement or New in ArcMap9.2

Enhanced map navigation
New Go To XY command for navigating to and annotating coordinate locations you type in.
Mouse wheel support for zooming, panning and re-centering map reduces need to switch tools while working.
Full set of keyboard shortcuts for map navigation and new menu of shortcuts when you right-click map.
New option to customize exactly where on your map the Full Extent button zooms out to.
Easier to specify scale with new customizable scale control including support for relative scale input.
New Viewer window makes it easy to view and work with your data at multiple scales simultaneously.
Enhanced Find dialog includes built-in web services for finding places and addresses.
New My Places dialog gives quick access to frequently used addresses, locations & extents from any map or globe.
Working with layers and querying features is easier
Group layers have their own transparency, contrast and brightness properties and support the Swipe tool.
Enhanced Identify tool includes ability to drag a box, sort and hide fields, etc.
Select By Attributes and other key dialogs have option to list field aliases instead of field names.
New Flicker command supports change detection and data comparison.
Map document improvements
Enhanced Measure tool adds area & feature measurement, snapping, running total, etc.
New Map Properties option lets you make relative paths be the default for all new map documents you create.
Better symbol drawing performance
Fill symbols with outlines in default ESRI style and others now draw up to 65% faster.
New ESRI_Optimized style provides additional fast drawing fill and line symbols.
Accessing map services from the web
Full datum transformation support greatly increases accuracy and reliability of ArcIMS image services in ArcMap.
ArcIMS image service authors can now choose to block access to geometry from ArcMap and other clients.
OGC WMS services are now projected on the fly in ArcMap. Secure WMS services are now supported.

ArcGIS Desktop application framework for Developer

What is new IN ArcGIS 9.2 for Developers

In the Tools > Customize dialog the Macros, Menus, New Menu and UIControls categories are now g
to
they are special categories. See graphic b
A new option has been added into the Tools > Customize dialog and Tools > Customize > Keyboard dialoit faster to find a particular command in the commands list. You can type a command name or any part of a commanname into the new 'Show commands containing' field. The Commands list will immediately be restricted to the ommands in the currently selected category that match or
cw
ll be restricted to categories containing commands that matc
this screenshot the Commands list only shows commands containing the string 'zoom', and the Categories list only shows categories containing commands like that: rouped gether at the end of the categories list and enclosed in [ ] brackets to make them easier to find and make it clearer below). g to make d contain the text string you typed in, and the Categories list i h or contain the text string you typed in.

Enhancements to existing developer assemblies
Carto exposes the new cartographic representation functionality. Custom applications can view and work with cartographic representations using an ArcGIS Engine Runtime or ArcView license; however, creating or editing a cartographic representation requires an ArcGIS Engine Runtime with Geodatabase Update extension or an ArcEditor license. In addition, the following layer factories have been added to the Carto library:

CadastralFabricLayerFactory - EngineCadAnnotationLayerFactory - EngineCadFeatureLayerFactory - EngineCadLayerFactory - EngineCoverageAnnotationLayerFactory - EngineIMSLayerFactory - EngineNetworkLayerFactory - EngineTopologyLayerFactory - EngineWMSMapLayerFactory - TerrainLayerFactory - TinLayerFactory - FeatureLayerFactory - netCDFLayerFactory - RasterCatalogLayerFactory - RasterLayerFactory \

Wednesday, February 27, 2008

Arc Map

The best way to learn ArcMap is to try it yourself. This tutorial guides you
through some basic ArcMap skills as you create and print a set of maps for a
county that is planning to expand its airport.
Residents of the county have identified several issues they are concerned
about. These include noise affecting schools and houses near the airport and
increased traffic along major roads. In this tutorial, you.ll first create and print
a map showing schools near the airport. Then you.ll place this map.along
with two other maps that show land use surrounding the airport and population
density for the county.on a wall-sized poster for display.
In the tutorial, you.ll learn how to:
. Display map features.
. Add data to your map.
. Edit geographic data.
. Work with data tables.
. Query and select geographic features.
. Create a summary graph.
. Lay out and print a map.
There are five exercises. Each exercise takes between 30 and 45 minutes to
complete. You can work through the entire tutorial or complete each lesson
one at a time.

Tuesday, February 26, 2008

INCA Software Team

INCA Informatics is having very powerfull team in software industry, they are fully capable and equiped with all new and latest technology to face any challenge. The list is very big but some of them are ....

Pushpinder Singh

Rajesh Negi

Jayant Rai

Abhishek Mishra

Anoop Misra

Manoj Singh(ME)

Amit Dhiman

Abhishek Tanwar

Ravi Garg

Rahul Srivastava

Gaurav Grigo

Poonam

Preeti

Ila Mital

Samar Singhal

Neha Singh

The list is very big, i will write another blog for rest of guy.

I know this complete team can do whatever they want. they don't care how and what problem is , but they can solve the problem with team work. Best of Luck Team INCA.

INCA Informatics Pvt Ltd Noida

if you want to know the company of Inca informatics pvt ltd.

please click on Link Below

INCA Informatics Pvt. Ltd. (INCA) offers leading edge IT solutions for Telecom and Geosciences, supported by uniquely strong domain expertise in the solution areas concerned. INCA provides highly specialized services in Data Management and in Software Testing & Certification. INCA executes IT projects – from conceptualization to realization, from software design to system integration. The company also provides Consulting in IT Systems Feasibility and Solutions Architecture.INCA has a notable track record, extending over a period of nine years, in delivering tailored solutions and services worldwide.At INCA, innovation is combined with a deep-rooted commitment to building value for the client.



INCA Projects >
SYSTEM IMPLEMENTATION & INTEGRATION

INCA’s expertise in System Integration Implementation stems from work done across different platforms using new technologies. INCA efficiently integrates a disparate range of application systems for several large clients, boosting efficiency, speed and responsiveness of business processes, resulting in enormous dividends. As a result of the above, INCA provides its customers with enhanced decision making capability, increased flexibility and adaptability, faster time to market with new products and services, enhanced customer and self-service, enhanced CRM and increased use of critical assets.In this field INCA has a large in-house team of trained and experienced manpower to provide expert solutions in:

»
Installation and Configuring
»
Interface Development
»
Technical Training and Support

Saturday, February 23, 2008

NEAutomation2 Application

This is the first method of NEAutomation2 API. after this you can access all the functionality of NEAPI like creating workorder,making connection adding inventory data and making Detail views. there are two ways to instanciate this
For VB
dim pAppHelper as new Neautomation2.AppHelper
dim pApp as Neautomation2.Application
set pApp=pAppHelpeer.Application

or
For Dot Net
dim pApp as Neautomation.application=Neautomation2.Application.Instance

or
For C#
Neautomation.Application pApp=Neautomation.application.instance();

Network Enginner NEAPI

Network Enginner is a telecom Software, which maintains OSP and ISP data. It maintains Telecom Inventory Data. NEAPI is used for accessing NE Data through NEAPI.
NEAutomation2 API is build by Telcordia.

coordinate systems and Georeferencing

Georeferencing and coordinate systems


Georeferencing: Assigning map coordinates and spatial location
All the elements in a map layer have a specific geographic location and extent that enables them to be located on or near the earth's surface. The ability to accurately describe geographic locations is critical in both mapping and GIS. This process is called georeferencing.

Describing the correct location and shape of features requires a framework for defining real-world locations. A geographic coordinate system is used to assign geographic locations to objects. A global coordinate system of latitude-longitude is one such framework. Another is a planar or Cartesian coordinate system derived from the global framework.
Maps represent locations on the earth's surface using grids, graticules, and tic marks labeled with various ground locations (both in measures of latitude-longitude and in projected coordinate systems (such as UTM meters). The geographic elements contained in various map layers are drawn in a specific order (on top of one another) for the given map extent.
GIS datasets contain coordinate locations within a global or Cartesian coordinate system to record geographic locations and shapes.

Latitude and longitude
One method for describing the position of a geographic location on the earth's surface is using spherical measures of latitude and longitude. They are measures of the angles (in degrees) from the center of the earth to a point on the earth's surface. This reference system is often referred to as a geographic coordinate system.

Latitude angles are measured in a north-south direction. The equator is at an angle of 0. Often, the northern hemisphere has positive measures of latitude and the southern hemisphere has negative measures of latitude. Longitude measures angles in an east-west direction. Longitude measures are traditionally based on the Prime Meridian, which is an imaginary line running from the North Pole through Greenwich, England to the South Pole. This angle is Longitude 0. West of the Prime Meridian is often recorded as negative Longitude and east is recorded as positive. For example, the location of Los Angeles, California is roughly Latitude "plus 33 degrees, 56 minutes" and Longitude "minus 118 degrees, 24 minutes."

Although longitude and latitude can locate exact positions on the surface of the globe, they are not uniform units of measure. Only along the equator does the distance represented by one degree of longitude approximate the distance represented by one degree of latitude. This is because the equator is the only parallel as large as a meridian. (Circles with the same radius as the spherical earth are called great circles. The equator and all meridians are great circles.)
Above and below the equator, the circles defining the parallels of latitude get gradually smaller until they become a single point at the North and South Poles where the meridians converge. As the meridians converge toward the poles, the distance represented by one degree of longitude decreases to zero. On the Clarke 1866 spheroid, one degree of longitude at the equator equals 111.321 km, while at 60° latitude, it is only 55.802 km. Since degrees of latitude and longitude don't have a standard length, you can't measure distances or areas accurately or display the data easily on a flat map or computer screen. Performing GIS analysis and mapping applications requires a more stable coordinate framework, which is provided by projected coordinate systems.

Map projections using Cartesian coordinates
Projected coordinate systems are any coordinate system designed for a flat surface, such as a printed map or a computer screen.
2D and 3D Cartesian coordinate systems provide the mechanism for describing the geographic location and shape of features using x and y values (and, as you will read later, by using columns and rows in rasters).
The Cartesian coordinate system uses two axes: one horizontal (x), representing east-west, and one vertical (y), representing north-south. The point at which the axes intersect is called the origin. Locations of geographic objects are defined relative to the origin, using the notation (x,y), where x refers to the distance along the horizontal axis, and y refers to the distance along the vertical axis. The origin is defined as (0,0).
In the illustration below, the notation (4, 3) records a point that is four units over in x and three units up in y from the origin.

3D coordinate systems
Increasingly, projected coordinate systems also use a Z value to measure elevation above or below mean sea level.
In the illustration below, the notation (2, 3, 4) records a point that is two units over in x and three units in y from the origin and whose elevation is 4 units above the earth's surface (such as 4 meters above mean sea level).


Properties and distortion in map projections
Since the earth is spherical, a challenge faced by cartographers and GIS professionals is how to represent the real world using a flat or planar coordinate system. To understand their dilemma, consider how you would flatten half of a basketball; it can't be done without distorting its shape or creating areas of discontinuity. The process of flattening the earth is called projection, hence the term map projection.

A projected coordinate system is defined on a flat, two dimensional surface. Projected coordinates can be defined for both 2D (x,y) and 3D (x,y,z) in which the x,y measurements represent the location on the earth's surface and z would represent height above or below mean sea level.
Below are some examples of various methods for deriving planar map projections.


Unlike a geographic coordinate system, a projected coordinate system has constant lengths, angles, and areas across the two dimensions. However, all map projections representing the earth's surface as a flat map, create distortions in some aspect of distance, area, shape, or direction.
Users cope with these limitations by using map projections that fit their intended uses, geographic location, and extent. GIS software also can transform information between coordinate systems to support integration and critical workflows.
Many map projections are designed for specific purposes. One map projection might be used for preserving shape while another might be used for preserving the area (conformal versus equal area).
These properties—the map projection (along with
Spheroid and
Datum), become important parameters in the definition of the coordinate system for each GIS dataset and each map. By recording detailed descriptions of these properties for each GIS dataset, computers can re-project and transform the geographic locations of dataset elements on the fly into any appropriate coordinate system. As a result, it's possible to integrate and combine information from multiple GIS layers. This is a fundamental GIS capability. Accurate location forms the basis for almost all GIS operations.
Learn more about Map Projections