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{{no footnotes|date=November 2013}}
{{about|the type of graphical calculator|the type of puzzle|Nonogram|the type of motif|Monogram}}


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[[Image:Parallel Scale Nomogram.svg|right|400px|thumb|A typical parallel-scale nomogram. This example calculates the value of T when S = 7.30 and R = 1.17 are substituted into the equation. The isopleth crosses the scale for T at just under 4.65.]]
 
A '''nomogram''' (from [[Greek_language|Greek]] νόμος ''nomos'', "law" and γραμμή ''grammē'', "line"), also called a '''nomograph''', '''alignment chart''' or '''abaque''', is a graphical calculating device, a two-dimensional diagram designed to allow the approximate graphical computation of a function. The field of nomography was invented in 1884 by the French engineer Philbert Maurice d’Ocagne (1862-1938) and used extensively for many years to provide engineers with fast graphical calculations of complicated formulas to a practical precision. Nomograms use a parallel [[coordinate system]] invented by d'Ocagne rather than standard [[Cartesian coordinates]].
 
A nomogram consists of a set of n scales, one for each variable in an equation. Knowing the values of n-1 variables, the value of the unknown variable can be found, or by fixing the values of some variables, the relationship between the unfixed ones can be studied. The result is obtained by laying a straightedge across the known values on the scales and reading the unknown value from where it crosses the scale for that variable. The virtual or drawn line created by the straightedge is called an ''index line'' or ''isopleth''.
 
Nomograms flourished in many different contexts for roughly 75 years because they allowed quick and accurate computations before the age of pocket calculators, making such calculations available to people who did not normally use slide rules, and who didn’t know algebra or were not competent at substituting numbers into equations to obtain results. Results from a nomogram are obtained very quickly and reliably by simply drawing one or more lines, and the user does not even need to know the actual equation used to calculate the result. In addition, nomograms naturally incorporate implicit or explicit domain knowledge into their design. For example, to create larger nomograms for greater accuracy the nomographer usually takes the care to only include scale ranges that are reasonable and of interest to the problem. Many nomograms include other useful markings such as reference labels and colored regions. All of these provide useful guideposts to the user.
 
Like a [[slide rule]], a nomogram is a graphical analog computation device, and like the slide rule, its accuracy is limited by the precision with which physical markings can be drawn, reproduced, viewed, and aligned. Most nomograms are used in applications where an approximate answer is appropriate and useful. Alternatively, a nomogram may be used to check an answer obtained from another exact calculation method. The slide rule is intended to be a general-purpose device, while a nomogram is designed to perform a specific calculation, with tables of values effectively built into the construction of the [[Scale (ratio)|scales]].
 
Note that other types of graphical calculators such as '''intercept charts''', '''trilinear diagrams''' and '''hexagonal charts''' are sometimes called nomograms. Another such example is the [[Smith chart]], a graphical calculator used in [[electronics]] and [[systems analysis]]. [[Thermodynamic diagram]]s and [[tephigram]]s, used to plot the vertical structure of the atmosphere and perform calculations on its stability and humidity content, are also occasionally referred to as nomograms. These do not meet the strict definition of a nomogram as a graphical calculator whose solution is found by the use of one or more linear isopleths.
 
==Description==
[[Image:Components of a Nomogram.png|right|300px|thumb|Components of a parallel-scale nomogram]]
A nomogram for a three-variable equation typically has three scales, although there exist nomograms in which two or even all three scales are common. Here two scales represent known values and the third is the scale where the result is read off. The simplest such equation is u<sub>1</sub> + u<sub>2</sub> + u<sub>3</sub> = 0 for the three variables u<sub>1</sub>, u<sub>2</sub> and u<sub>3</sub>. An example of this type of nomogram is shown on the right, annotated with terms used to describe the parts of a nomogram.
 
More complicated equations can sometimes be expressed as the sum of functions of the three variables. For example, the nomogram at the top of this article could be constructed as a parallel-scale nomogram because it can be expressed as such a sum after taking logarithms of both sides of the equation.
 
The scale for the unknown variable can lie between the other two scales or outside of them. The known values of the calculation are marked on the scales for those variables, and a line is drawn between these marks. The result is read off the unknown scale at the point where the line intersects that scale. The scales include 'tick marks' to indicate exact number locations, and they may also include labeled reference values. These scales may be [[linear]], [[logarithmic scale|logarithmic]], or have some more complex relationship.
 
The sample isopleth shown in red on the nomogram at the top of this article calculates the value of T when S = 7.30 and R = 1.17. The isopleth crosses the scale for T at just under 4.65; a larger figure printed in high resolution on paper would yield T = 4.64 to three-digit precision. Note that any variable can be calculated from values of the other two, a feature of nomograms that is particularly useful for equations in which a variable cannot be algebraically isolated from the other variables.
 
Straight scales are useful for relatively simple calculations, but for more complex calculations the use of simple or elaborate curved scales may be required. Nomograms for more than three variables can be constructed by incorporating a grid of scales for two of the variables, or by concatenating individual nomograms of fewer numbers of variables into a compound nomogram.
 
==Applications==
Nomograms have been used in an extensive array of applications. A sample includes
 
* The original application by d'Ocagne, the automation of complicated "cut and fill" calculations for earth removal during the construction of the French national railway system. This was an important proof of concept, because the calculations are non-trivial and the results translated into significant savings of time, effort, and money.
 
* The design of channels, pipes and weirs for regulating the flow of water.
 
* The work of [[Lawrence Henderson]], in which nomograms were used to correlate many different aspects of blood physiology. It was the first major use of nomograms in the United States and also the first medical nomograms anywhere. Nomograms continue to be used extensively in medical fields.
 
* Ballistics calculations prior to fire control systems, where calculating time was critical.
 
* Machine shop calculations, to convert blueprint dimensions and perform calculations based on material dimensions and properties. These nomograms often included markings for standard dimensions and for available manufactured parts.
 
* Statistics, for complicated calculations of properties of distributions and for operations research including the design of acceptance tests for quality control.
 
* Operations Research, to obtain results in a variety of optimization problems.
 
* Chemistry and chemical engineering, to encapsulate both general physical relationships and empirical data for specific compounds.
 
* Aeronautics, in which nomograms were used for decades in the cockpits of aircraft of all descriptions. As a navigation and flight control aid, nomograms were fast, compact and easy-to-use calculators.
 
* Astronomical calculations, as in the post-launch orbital calculations of [[Sputnik 1]] by P.E. Elyasberg.<ref>[http://rgantd.rbook_2.php?link=mozjorin Yu.A.Mozzhorin Memories] at the website of Russian state archive for scientific-technical documentation</ref>
 
* Engineering work of all kinds: Electrical design of filters and transmission lines, mechanical calculations of stress and loading, optical calculations, and so forth.
 
* Military, where complex calculations need to be made in the field quickly and with reliability not dependent on electrical devices.
 
==Examples==
===Parallel-resistance/thin-lens nomogram===
[[Image:Nomogramparallelresistance.svg|right|200px|thumb|Parallel [[electrical resistance]] nomogram]]
The nomogram below performs the computation
 
:<math>\frac{1}{1/A + 1/B}</math>
 
This nomogram is interesting because it performs a useful nonlinear calculation using only straight-line, equally-graduated scales.
 
''A'' and ''B'' are entered on the horizontal and vertical scales, and the result is read from the diagonal scale.  Being proportional to the [[harmonic mean]] of ''A'' and ''B'', this formula has several applications. For example, it is the [[Series and parallel circuits#Parallel circuits|parallel-resistance formula]] in [[electronics]], and the [[Thin lens|thin-lens equation]] in [[optics]].
 
In the example, the red line demonstrates that parallel resistors of 56 and 42&nbsp;[[ohm]]s have a combined resistance of 24&nbsp;ohms. It also demonstrates that an object at a distance of 56 cm from a [[lens (optics)|lens]] whose [[focal length]] is 24&nbsp;cm forms a [[real image]] at a distance of 42&nbsp;cm.
<br clear=all />
 
===Chi-squared test computation nomogram===
[[Image:chisquarenomo3.png|right|200px|thumb|[[Chi-squared distribution]] nomogram]]
The nomogram below can be used to perform an approximate computation of some values needed when performing a familiar statistical test, [[Pearson's chi-squared test]]. This nomogram demonstrates the use of curved scales with unevenly-spaced graduations.
 
The relevant expression is
 
:<math>\frac{(\operatorname{observed} - \operatorname{expected})^2}
            {\operatorname{expected}}</math>
 
The scale along the top is shared among five different ranges of observed values: A, B, C, D and E. The observed value is found in one of these ranges, and the tick mark used on that scale is found immediately above it. Then the curved scale used for the expected value is selected based on the range. For example, an observed value of 9 would use the tick mark above the 9 in range A, and curved scale A would be used for the expected value. An observed value of 81 would use the tick mark above 81 in range E, and curved scale E would be used for the expected value. This allows five different nomograms to be incorporated into a single diagram.
 
In this manner, the blue line demonstrates the computation of
 
:(9 &minus; 5)<sup>2</sup>/ 5 = 3.2
 
and the red line demonstrates the computation of
 
:(81 &minus; 70)<sup>2</sup> / 70 = 1.7
 
In performing the test, [[Yates's correction for continuity]] is often applied, and simply involves subtracting 0.5 from the observed values. A nomogram for performing the test with Yates's correction could be constructed simply by shifting each "observed" scale half a unit to the left, so that the 1.0, 2.0, 3.0, ... graduations are placed where the values 0.5, 1.5, 2.5, ... appear on the present chart.
<br clear=all />
 
===Food risk assessment nomogram===
[[Image:Risk Based Sampling Nomogram (3yr).png|right|200px|thumb|Food [[risk assessment]] nomogram]]
Although nomograms represent mathematical relationships, not all are mathematically derived.  The following one was developed graphically to achieve appropriate end results that could readily be defined by the product of their relationships in subjective units rather than numerically. The use of non-parallel axes enabled the non-linear relationships to be incorporated into the model.
 
The numbers in square boxes denote the axes requiring input after appropriate assessment. 
 
The pair of nomograms at the top of the image determine the probability of occurrence and the availability, which are then incorporated into the bottom multistage nomogram.
 
Lines 8 and 10 are ‘tie lines’ or ‘pivot lines’ and are used for the transition between the stages of the compound nomogram.
 
The final pair of parallel logarithmic scales (12) are not nomograms as such, but reading-off scales to translate the risk score (11, remote to extremely high) into a sampling frequency to address safety aspects and other ‘consumer protection’ aspects respectively.  This stage requires political ‘buy in’ balancing cost against risk.  The example uses a three-year minimum frequency for each, though with the high risk end of the scales different for the two aspects, giving different frequencies for the two, but both subject to an overall minimum sampling of every food for all aspects at least once every three years.
 
This [[risk assessment]] nomogram was developed by the [[Public analyst|UK Public Analyst Service]] with funding from the [[Food Standards Agency|UK Food Standards Agency]] for use as a tool to guide the appropriate frequency of sampling and analysis of food for official food control purposes, intended to be used to assess all potential problems with all foods, although not yet adopted.
<br clear=all />
 
== See also ==
{{Commonscat|Nomograms}}
{{Wiktionary|nomogram}}
* [[Coordinate system]]
* [[Log-log graph]]
* [[Semilog graph]]
 
== Notes ==
{{Reflist|colwidth=35em}}
 
== References ==
{{refbegin}}
* D.P. Adams, ''Nomography: Theory and Application'', (Archon Books) 1964.
* H.J. Allcock, J. Reginald Jones, and J.G.L. Michel, ''The Nomogram. The Theory and Practical Construction of Computation Charts'', 5th  ed., (London: Sir Isaac Pitman & Sons, Ltd.) 1963.
* S. Brodestsky, ''A First Course in Nomography'', (London, G. Bell and Sons) 1920.
* D.S. Davis, ''Empirical Equations and Nomography'', (New York: McGraw-Hill Book Co.) 1943.
* M. d'Ocagne: ''Traité de Nomographie'', (Gauthier-Villars, Paris) 1899.
* M. d'Ocagne: (1900) ''Sur la résolution nomographique de l'équation du septième degré''. Comptes rendus (Paris), 131, 522&ndash;524.
* R.D. Douglass and D.P. Adams, ''Elements of Nomography'', (New York: McGraw-Hill) 1947.
* R.P. Hoelscher, et al., ''Graphic Aids in Engineering Computation'', (New York: McGraw-Hill) 1952.
* L. Ivan Epstein, ''Nomography'', (New York: Interscience Publishers) 1958.
* L.H. Johnson, ''Nomography and Empirical Equations'', (New York: John Wiley and Sons) 1952.
* M. Kattan and J. Marasco. (2010) ''What Is a Real Nomogram?'', Seminars in oncology, 37(1), 23&ndash;26.
* A.S. Levens, ''Nomography'', 2nd ed., (New York: John Wiley & Sons, Inc.) 1959.
* F.T. Mavis, ''The Construction of Nomographic Charts'', (Scranton, International Textbook) 1939.
* E. Otto, ''Nomography'',(New York: The Macmillan Company) 1963.
* H.A. Evesham ''The History and Development of Nomography'', (Boston: Docent Press) 2010. ISBN 9781456479626
* T.H. Gronwall, R. Doerfler, A. Gluchoff, and S. Guthery, ''Calculating Curves: The Mathematics, History, and Aesthetic Appeal of T. H. Gronwall's Nomographic Work'', (Boston: Docent Press) 2012. ISBN 9780983700432
{{refend}}
 
==External links==
*{{MathWorld |title= Nomogram |urlname= Nomogram}}
*[http://myreckonings.com/wordpress/2008/01/09/the-art-of-nomography-i-geometric-design/ The Art of Nomography] describes the design of nomograms using geometry, determinants, and transformations.
*[http://myreckonings.com/wordpress/2010/04/18/nomography-article-in-the-umap-journal/ The Lost Art of Nomography] is a math journal article surveying the field of nomography.
*[http://www.projectrho.com/nomogram/index.html Nomograms for Wargames] but also of general interest.
*[http://pynomo.org PyNomo] &ndash; open source software for constructing nomograms.
*[http://www.ece.rochester.edu/~jones/NomoDevel/nomopage.htm Java Applet ] for constructing simple nomograms.
* [http://www.r-bloggers.com/RUG/2011/10/user-2011-jonathan-rougier-nomograms-for-visualising-relationships-between-three-variables/ Nomograms for visualising relationships between three variables] - video and slides of invited talk by Jonathan Rougier for useR!2011.
 
[[Category:Charts]]
[[Category:Mathematical tools]]
[[Category:Theory of computation]]
[[Category:Diagrams]]

Revision as of 15:07, 2 December 2013

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A typical parallel-scale nomogram. This example calculates the value of T when S = 7.30 and R = 1.17 are substituted into the equation. The isopleth crosses the scale for T at just under 4.65.

A nomogram (from Greek νόμος nomos, "law" and γραμμή grammē, "line"), also called a nomograph, alignment chart or abaque, is a graphical calculating device, a two-dimensional diagram designed to allow the approximate graphical computation of a function. The field of nomography was invented in 1884 by the French engineer Philbert Maurice d’Ocagne (1862-1938) and used extensively for many years to provide engineers with fast graphical calculations of complicated formulas to a practical precision. Nomograms use a parallel coordinate system invented by d'Ocagne rather than standard Cartesian coordinates.

A nomogram consists of a set of n scales, one for each variable in an equation. Knowing the values of n-1 variables, the value of the unknown variable can be found, or by fixing the values of some variables, the relationship between the unfixed ones can be studied. The result is obtained by laying a straightedge across the known values on the scales and reading the unknown value from where it crosses the scale for that variable. The virtual or drawn line created by the straightedge is called an index line or isopleth.

Nomograms flourished in many different contexts for roughly 75 years because they allowed quick and accurate computations before the age of pocket calculators, making such calculations available to people who did not normally use slide rules, and who didn’t know algebra or were not competent at substituting numbers into equations to obtain results. Results from a nomogram are obtained very quickly and reliably by simply drawing one or more lines, and the user does not even need to know the actual equation used to calculate the result. In addition, nomograms naturally incorporate implicit or explicit domain knowledge into their design. For example, to create larger nomograms for greater accuracy the nomographer usually takes the care to only include scale ranges that are reasonable and of interest to the problem. Many nomograms include other useful markings such as reference labels and colored regions. All of these provide useful guideposts to the user.

Like a slide rule, a nomogram is a graphical analog computation device, and like the slide rule, its accuracy is limited by the precision with which physical markings can be drawn, reproduced, viewed, and aligned. Most nomograms are used in applications where an approximate answer is appropriate and useful. Alternatively, a nomogram may be used to check an answer obtained from another exact calculation method. The slide rule is intended to be a general-purpose device, while a nomogram is designed to perform a specific calculation, with tables of values effectively built into the construction of the scales.

Note that other types of graphical calculators such as intercept charts, trilinear diagrams and hexagonal charts are sometimes called nomograms. Another such example is the Smith chart, a graphical calculator used in electronics and systems analysis. Thermodynamic diagrams and tephigrams, used to plot the vertical structure of the atmosphere and perform calculations on its stability and humidity content, are also occasionally referred to as nomograms. These do not meet the strict definition of a nomogram as a graphical calculator whose solution is found by the use of one or more linear isopleths.

Description

Components of a parallel-scale nomogram

A nomogram for a three-variable equation typically has three scales, although there exist nomograms in which two or even all three scales are common. Here two scales represent known values and the third is the scale where the result is read off. The simplest such equation is u1 + u2 + u3 = 0 for the three variables u1, u2 and u3. An example of this type of nomogram is shown on the right, annotated with terms used to describe the parts of a nomogram.

More complicated equations can sometimes be expressed as the sum of functions of the three variables. For example, the nomogram at the top of this article could be constructed as a parallel-scale nomogram because it can be expressed as such a sum after taking logarithms of both sides of the equation.

The scale for the unknown variable can lie between the other two scales or outside of them. The known values of the calculation are marked on the scales for those variables, and a line is drawn between these marks. The result is read off the unknown scale at the point where the line intersects that scale. The scales include 'tick marks' to indicate exact number locations, and they may also include labeled reference values. These scales may be linear, logarithmic, or have some more complex relationship.

The sample isopleth shown in red on the nomogram at the top of this article calculates the value of T when S = 7.30 and R = 1.17. The isopleth crosses the scale for T at just under 4.65; a larger figure printed in high resolution on paper would yield T = 4.64 to three-digit precision. Note that any variable can be calculated from values of the other two, a feature of nomograms that is particularly useful for equations in which a variable cannot be algebraically isolated from the other variables.

Straight scales are useful for relatively simple calculations, but for more complex calculations the use of simple or elaborate curved scales may be required. Nomograms for more than three variables can be constructed by incorporating a grid of scales for two of the variables, or by concatenating individual nomograms of fewer numbers of variables into a compound nomogram.

Applications

Nomograms have been used in an extensive array of applications. A sample includes

  • The original application by d'Ocagne, the automation of complicated "cut and fill" calculations for earth removal during the construction of the French national railway system. This was an important proof of concept, because the calculations are non-trivial and the results translated into significant savings of time, effort, and money.
  • The design of channels, pipes and weirs for regulating the flow of water.
  • The work of Lawrence Henderson, in which nomograms were used to correlate many different aspects of blood physiology. It was the first major use of nomograms in the United States and also the first medical nomograms anywhere. Nomograms continue to be used extensively in medical fields.
  • Ballistics calculations prior to fire control systems, where calculating time was critical.
  • Machine shop calculations, to convert blueprint dimensions and perform calculations based on material dimensions and properties. These nomograms often included markings for standard dimensions and for available manufactured parts.
  • Statistics, for complicated calculations of properties of distributions and for operations research including the design of acceptance tests for quality control.
  • Operations Research, to obtain results in a variety of optimization problems.
  • Chemistry and chemical engineering, to encapsulate both general physical relationships and empirical data for specific compounds.
  • Aeronautics, in which nomograms were used for decades in the cockpits of aircraft of all descriptions. As a navigation and flight control aid, nomograms were fast, compact and easy-to-use calculators.
  • Astronomical calculations, as in the post-launch orbital calculations of Sputnik 1 by P.E. Elyasberg.[1]
  • Engineering work of all kinds: Electrical design of filters and transmission lines, mechanical calculations of stress and loading, optical calculations, and so forth.
  • Military, where complex calculations need to be made in the field quickly and with reliability not dependent on electrical devices.

Examples

Parallel-resistance/thin-lens nomogram

Parallel electrical resistance nomogram

The nomogram below performs the computation

This nomogram is interesting because it performs a useful nonlinear calculation using only straight-line, equally-graduated scales.

A and B are entered on the horizontal and vertical scales, and the result is read from the diagonal scale. Being proportional to the harmonic mean of A and B, this formula has several applications. For example, it is the parallel-resistance formula in electronics, and the thin-lens equation in optics.

In the example, the red line demonstrates that parallel resistors of 56 and 42 ohms have a combined resistance of 24 ohms. It also demonstrates that an object at a distance of 56 cm from a lens whose focal length is 24 cm forms a real image at a distance of 42 cm.

Chi-squared test computation nomogram

Chi-squared distribution nomogram

The nomogram below can be used to perform an approximate computation of some values needed when performing a familiar statistical test, Pearson's chi-squared test. This nomogram demonstrates the use of curved scales with unevenly-spaced graduations.

The relevant expression is

The scale along the top is shared among five different ranges of observed values: A, B, C, D and E. The observed value is found in one of these ranges, and the tick mark used on that scale is found immediately above it. Then the curved scale used for the expected value is selected based on the range. For example, an observed value of 9 would use the tick mark above the 9 in range A, and curved scale A would be used for the expected value. An observed value of 81 would use the tick mark above 81 in range E, and curved scale E would be used for the expected value. This allows five different nomograms to be incorporated into a single diagram.

In this manner, the blue line demonstrates the computation of

(9 − 5)2/ 5 = 3.2

and the red line demonstrates the computation of

(81 − 70)2 / 70 = 1.7

In performing the test, Yates's correction for continuity is often applied, and simply involves subtracting 0.5 from the observed values. A nomogram for performing the test with Yates's correction could be constructed simply by shifting each "observed" scale half a unit to the left, so that the 1.0, 2.0, 3.0, ... graduations are placed where the values 0.5, 1.5, 2.5, ... appear on the present chart.

Food risk assessment nomogram

Food risk assessment nomogram

Although nomograms represent mathematical relationships, not all are mathematically derived. The following one was developed graphically to achieve appropriate end results that could readily be defined by the product of their relationships in subjective units rather than numerically. The use of non-parallel axes enabled the non-linear relationships to be incorporated into the model.

The numbers in square boxes denote the axes requiring input after appropriate assessment.

The pair of nomograms at the top of the image determine the probability of occurrence and the availability, which are then incorporated into the bottom multistage nomogram.

Lines 8 and 10 are ‘tie lines’ or ‘pivot lines’ and are used for the transition between the stages of the compound nomogram.

The final pair of parallel logarithmic scales (12) are not nomograms as such, but reading-off scales to translate the risk score (11, remote to extremely high) into a sampling frequency to address safety aspects and other ‘consumer protection’ aspects respectively. This stage requires political ‘buy in’ balancing cost against risk. The example uses a three-year minimum frequency for each, though with the high risk end of the scales different for the two aspects, giving different frequencies for the two, but both subject to an overall minimum sampling of every food for all aspects at least once every three years.

This risk assessment nomogram was developed by the UK Public Analyst Service with funding from the UK Food Standards Agency for use as a tool to guide the appropriate frequency of sampling and analysis of food for official food control purposes, intended to be used to assess all potential problems with all foods, although not yet adopted.

See also

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Via PropNex International, we continually construct on our fame in the international property enviornment. Click here for more of our abroad initiatives. Instances have modified. We don't see those unlawful hawkers anymore. Instead, nicely dressed property brokers were seen reaching out to people visiting the market in the morning. Real estate can be a lonely enterprise and it is straightforward to really feel demoralised, especially when there are no enquiries despite your greatest effort in advertising your shopper's property. That is the place having the fitting assist from fellow associates is essential. Our firm offers administration services for condominiums and apartments. With a crew of qualified folks, we assist to make your estate a nicer place to stay in. HDB Flat for Hire 2 Rooms

Achievers are all the time the first to check new technologies & providers that can help them enhance their sales. When property guru first began, many brokers didn't consider in it until they began listening to other colleagues getting unbelievable outcomes. Most brokers needs to see proof first, before they dare to take the first step in attempting. These are often the late comers or late adopters. There is a purpose why top achievers are heading the wave or heading the best way. Just because they try new properties in singapore issues ahead of others. The rest just observe after!

Firstly, a Fraudulent Misrepresentation is one that is made knowingly by the Representor that it was false or if it was made without belief in its fact or made recklessly without concerning whether or not it is true or false. For instance estate agent A told the potential consumers that the tenure of a landed property they are considering is freehold when it is really one with a ninety nine-yr leasehold! A is responsible of constructing a fraudulent misrepresentation if he is aware of that the tenure is the truth is a ninety nine-yr leasehold instead of it being freehold or he didn't consider that the tenure of the house was freehold or he had made the assertion with out caring whether or not the tenure of the topic property is in fact freehold.

I such as you to be, am a brand new projects specialist. You've got the conception that new tasks personnel should be showflat certain. Should you're eager, let me train you the right way to master the entire show flats island vast as a substitute of getting to stay just at 1 place. Is that attainable you may ask, well, I've achieved it in 6 months, you can too. Which company is well-recognized and is actually dedicated for developing rookie within the industry in venture sales market with success? Can a rookie join the company's core group from day one? I wish to propose a third class, which I have been grooming my agents in the direction of, and that is as a Huttons agent, you will be able to market and have knowledge of ALL Huttons projects, and if essential, projects exterior of Huttons as properly.

GPS has assembled a high workforce of personnel who are additionally well-known figures in the native actual property scene to pioneer this up-and-coming organization. At GPS Alliance, WE LEAD THE WAY! Many people have asked me how I managed to earn S$114,000 from my sales job (my third job) at age 24. The reply is easy. After graduation from NUS with a Historical past diploma, my first job was in actual estate. Within the ultimate part of this series, I interview one of the top agents in ERA Horizon Group and share with you the secrets to his success! Learn it RIGHT HERE

Notice that the application must be submitted by the appointed Key Government Officer (KEO) such as the CEO, COO, or MD. Once the KEO has submitted the mandatory paperwork and assuming all documents are in order, an email notification shall be sent stating that the applying is permitted. No hardcopy of the license might be issued. A delicate-copy could be downloaded and printed by logging into the CEA website. It takes roughly four-6 weeks to course of an utility.

Notes

43 year old Petroleum Engineer Harry from Deep River, usually spends time with hobbies and interests like renting movies, property developers in singapore new condominium and vehicle racing. Constantly enjoys going to destinations like Camino Real de Tierra Adentro.

References

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  • D.P. Adams, Nomography: Theory and Application, (Archon Books) 1964.
  • H.J. Allcock, J. Reginald Jones, and J.G.L. Michel, The Nomogram. The Theory and Practical Construction of Computation Charts, 5th ed., (London: Sir Isaac Pitman & Sons, Ltd.) 1963.
  • S. Brodestsky, A First Course in Nomography, (London, G. Bell and Sons) 1920.
  • D.S. Davis, Empirical Equations and Nomography, (New York: McGraw-Hill Book Co.) 1943.
  • M. d'Ocagne: Traité de Nomographie, (Gauthier-Villars, Paris) 1899.
  • M. d'Ocagne: (1900) Sur la résolution nomographique de l'équation du septième degré. Comptes rendus (Paris), 131, 522–524.
  • R.D. Douglass and D.P. Adams, Elements of Nomography, (New York: McGraw-Hill) 1947.
  • R.P. Hoelscher, et al., Graphic Aids in Engineering Computation, (New York: McGraw-Hill) 1952.
  • L. Ivan Epstein, Nomography, (New York: Interscience Publishers) 1958.
  • L.H. Johnson, Nomography and Empirical Equations, (New York: John Wiley and Sons) 1952.
  • M. Kattan and J. Marasco. (2010) What Is a Real Nomogram?, Seminars in oncology, 37(1), 23–26.
  • A.S. Levens, Nomography, 2nd ed., (New York: John Wiley & Sons, Inc.) 1959.
  • F.T. Mavis, The Construction of Nomographic Charts, (Scranton, International Textbook) 1939.
  • E. Otto, Nomography,(New York: The Macmillan Company) 1963.
  • H.A. Evesham The History and Development of Nomography, (Boston: Docent Press) 2010. ISBN 9781456479626
  • T.H. Gronwall, R. Doerfler, A. Gluchoff, and S. Guthery, Calculating Curves: The Mathematics, History, and Aesthetic Appeal of T. H. Gronwall's Nomographic Work, (Boston: Docent Press) 2012. ISBN 9780983700432

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External links



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  • The Art of Nomography describes the design of nomograms using geometry, determinants, and transformations.
  • The Lost Art of Nomography is a math journal article surveying the field of nomography.
  • Nomograms for Wargames but also of general interest.
  • PyNomo – open source software for constructing nomograms.
  • Java Applet for constructing simple nomograms.
  • Nomograms for visualising relationships between three variables - video and slides of invited talk by Jonathan Rougier for useR!2011.
  1. Yu.A.Mozzhorin Memories at the website of Russian state archive for scientific-technical documentation