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1. Introduction
The simplest observable in high-energy interactions is a count of charged particles produced in a collision and its mean value. Its distribution measured in full or partial phase space forms both a tool for studying models and a probe for particle dynamics. A large number of statistical probability distribution functions (PDF) have been used to understand its behaviour. These include Koba, Nielsen, and Olesen (KNO) scaling [1], Poisson distribution [2, 3], binomial and negative binomial [4–6] distributions, lognormal distribution [7], Tsallis distribution [8, 9], Weibull distribution [10], modified forms of these, and several other distributions. NBD has been one of the most extensively used. It was very successful until the results from UA5 collaboration [11, 12] were published. A shoulder structure was observed in the multiplicity distribution in
In one of our recent papers, we introduced the shifted Gompertz distribution [15], henceforth named as SGD, to investigate the multiplicities in various leptonic and hadronic collisions over a large range of collision energies. The distribution was first introduced by Bemmaor [16] as a model of adoption of innovations. The two nonnegative fit parameters define the scale and shape of the distribution. This distribution has been widely studied in various contexts [17–19]. In our earlier work [15], we proposed to use the SGD for studying the charged particle multiplicities in high-energy particle collisions and showed from a detailed study for collisions in full phase space and also in limited phase space that this distribution explained the experimental data very well in high-energy particle collisions using leptons and hadrons as probes. Subsequently, we also used it to calculate the higher moments of a multiplicity distribution which also serve as a powerful tool to unfold the characteristics and correlations of particles [20]. We also used 2-component shifted Gompertz distribution, named as modified shifted Gompertz (MSGD), to successfully improve the agreement between data and fit. The details are given in our paper [15].
Wilk and Wlodarczyk, in one of their recent publications [21, 22], pointed out that the 2-component or multicomponent fits improve the agreement only at large
The multiplicity distribution is then determined by the function form of
All multiplicities are then connected by means of some coefficients
In the present work, we use shifted Gompertz distribution and its modified forms using the data at high energies from
In Section 2, we provide the essential formulae for the probability distribution function of the shifted Gompertz distribution and modified 2-component shifted Gompertz distributions, in brief. A very brief description of how the oscillations have been estimated in the multiplicity distributions by Wilk and Wlodarczyk [21, 22] is included for the sake of completeness.
Section 3 presents the analysis of experimental data, the fitted shifted Gompertz distributions, the fitted modified shifted Gompertz, and the distributions giving out the oscillatory behaviour. Discussion and conclusion are presented in Section 4.
2. Shifted Gompertz Distribution (SGD)
Let
The mean value
2.1. Modified Forms of Shifted Gompertz Distribution
In this paper, we adopt a different approach and investigate what kind of changes in the structure of the multiplicity distribution described by the SGD is necessary in order to describe the same data by a single SGD, with accordingly modified parameters
3. Analysis and Results
Equation (3) can be reversed, and a recurrence formula can be obtained for the coefficients
The errors on the coefficients
Since the coefficients
In the present work, calculations are performed using the data from different experiments and following two collision types:
(i)
(ii)
The charged hadron multiplicity experimental distributions are fitted with the SGD (equation (4)), the 2-component SGD (equation (6)), MSGD1 (equation (7)), and MSGD2 (equation (8)) for all rapidity windows at all energies. It is observed that data do not show good agreement with fits for the lower and for very high values of
Table 1
Energy (GeV) | Rapidity interval | SGD | 2-component SGD | MSGD1 | MSGD2 |
---|---|---|---|---|---|
900 | 0.5 | 3.57/19 | 0.79/16 | 0.97/17 | 0.57/16 |
900 | 1.0 | 17.50/32 | 11.16/29 | 3.41/30 | 6.32/29 |
900 | 1.5 | 66.98/48 | 12.59/45 | 13.74/46 | 11.02/45 |
900 | 2.0 | 55.41/58 | 8.17/55 | 19.38/56 | 17.27/55 |
900 | 2.4 | 72.26/64 | 12.63/61 | 21.79/62 | 22.32/61 |
2360 | 0.5 | 8.13/19 | 2.75/16 | 5.41/17 | 4.24/16 |
2360 | 1.0 | 24.30/34 | 22.99/31 | 15.32/32 | 7.55/31 |
2360 | 1.5 | 28.08/45 | 3.74/42 | 7.51/43 | 6.02/42 |
2360 | 2.0 | 39.83/55 | 22.71/52 | 9.77/53 | 9.76/52 |
2360 | 2.4 | 59.55/66 | 7.85/63 | 17.34/64 | 33.03/63 |
7000 | 0.5 | 117.47/37 | 13.50/34 | 8.28/35 | 8.49/34 |
7000 | 1.0 | 223.71/66 | 27.11/63 | 28.33/64 | 13.27/63 |
7000 | 1.5 | 247.86/88 | 26.46/85 | 88.09/86 | 7.62/85 |
7000 | 2.0 | 164.61/108 | 25.09/105 | 35.37/106 | 10.17/105 |
7000 | 2.4 | 179.74/123 | 27.45/120 | 33.91/121 | 5.57/120 |
Figure 2 shows the similar distributions at
Table 2
Energy (GeV) | Rapidity interval | SGD | 2-component SGD | MSGD1 | MSGD2 |
---|---|---|---|---|---|
200 | 0.5 | 11.66/11 | 0.43/8 | 5.38/9 | 0.63/8 |
200 | 1.5 | 9.11/29 | 8.79/26 | 8.89/27 | 9.82/26 |
200 | 3.0 | 12.62/48 | 5.23/45 | 9.69/46 | 5.69/45 |
200 | 5.0 | 35.33/52 | 4.40/49 | 11.57/50 | 34.19/49 |
200 | Full | 3.96/25 | 2.21/22 | 3.50/23 | 17.68/22 |
540 | 0.5 | 26.90/20 | 21.33/17 | 19.92/18 | 20.53/17 |
540 | 1.5 | 17.22/26 | 10.30/23 | 15.20/24 | 8.20/23 |
540 | 3.0 | 176.38/28 | 147.68/25 | 130.11/26 | 124.13/25 |
540 | 5.0 | 69.33/33 | 26.12/30 | 54.43/31 | 35.54/30 |
540 | Full | 59.83/49 | 59.83/46 | 56.21/47 | 34.60/46 |
900 | 0.5 | 10.16/20 | 5.02/17 | 4.73/18 | 13.33/17 |
900 | 1.5 | 35.85/46 | 3.86/43 | 6.12/44 | 15.53/43 |
900 | 3.0 | 63.90/72 | 6.97/69 | 8.57/70 | 8.57/69 |
900 | 5.0 | 89.95/95 | 89.95/92 | 34.81/93 | 25.06/92 |
900 | Full | 67.16/47 | 11.23/44 | 15.67/45 | 13.69/44 |
In Figures 3 and 4, we show the ratio plots for multiplicity dependence of the ratio
The coefficients
[figures omitted; refer to PDF]
Figure 7 shows the coefficients
[figures omitted; refer to PDF]
The coefficients
The coefficients
In equation (9), the coefficients
4. Conclusion
In this paper, we show and reaffirm that the MDs possess a fine structure which can be detected experimentally and analysed in terms of a suitable recurrence relation, such as the one in equation (9). The coefficients
Acknowledgments
The author R. Aggarwal is grateful to the DST, Government of India, for the INSPIRE faculty grant.
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Abstract
Study of charged particle multiplicity distribution in high-energy interactions of particles helps in revealing the dynamics of particle production and the underlying statistical patterns, by which these distributions follow. Several distributions derived from statistics have been employed to understand its behaviour. In one of our earlier papers, we introduced the shifted Gompertz distribution to investigate this variable and showed that the multiplicity distributions in a variety of processes at different energies can be very well described by this distribution. The fact that the shifted Gompertz distribution, which has been extensively used in diffusion theory, social networking and forecasting, has been used for the first time in high-energy physics collisions remains interesting. In this paper, we investigate the phenomenon of oscillatory behaviour of the counting statistics observed in the high-energy experimental data, resulting from different types of recurrence relations defining the probability distributions. We search for such oscillations in the multiplicity distributions well described by the shifted Gompertz distribution and look for retrieval of additional valuable information from these distributions.
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